Methods and compositions for treatment of fabry disease

The expression of α-Gal A protein in cells using a mutated WPRE sequence and AAV vector addresses the limitations of ERT by achieving prolonged enzyme activity and significant reduction in glycosphingolipids, effectively treating Fabry disease.

JP2025142225APending Publication Date: 2025-09-30SANGAMO THERAPEUTICS INC
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Patent Information

Application Number
JP2025121650
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-01-04
Filing Date
2025-07-18
Publication Date
2025-09-30

AI Technical Summary

Technical Problem

Current enzyme replacement therapies for Fabry disease, such as ERT, require frequent infusions and are associated with infusion-related reactions and the development of neutralizing antibodies, leading to fluctuating enzyme levels and incomplete substrate clearance.

Method used

A method involving the expression of α-galactosidase A (α-Gal A) protein in cells using a mutated WPRE sequence and a GLA transgene, delivered via an AAV viral vector, to achieve sustained enzyme activity and reduce glycosphingolipid levels in subjects.

Benefits of technology

The method results in prolonged α-Gal A protein expression, reducing glycosphingolipids by up to 80% and increasing enzyme activity by 100- to 1,500-fold, providing effective and sustained treatment of Fabry disease symptoms.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide methods and compositions for treatment of Fabry disease.SOLUTION: The present disclosure provides expression constructs comprising a GLA transgene encoding the at least one α-Gal A protein for use in expressing α-Gal A proteins and preventing, inhibiting or treating Fabry disease or one or more symptoms associated with Fabry disease. Disclosed herein is a method of expressing at least one α galactosidase A (α-Gal A) protein in a cell. In some embodiments, the method comprises administering an expression construct comprising a mutated WPRE sequence, optionally a mut6 mutated WPRE sequence, and a GLA transgene encoding at least one α-Gal A protein to the cell such that the α-Gal A protein is expressed in the cell.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 62 / 788,439, filed January 4, 2019, the entire disclosure of which is incorporated herein by reference. Sequence Listing

[0002] This application contains a Sequence Listing that has been submitted electronically in ASCII format and is incorporated herein by reference in its entirety. The ASCII copy, created on December 3, 2019, is named 8325018840SL.txt and is 10,636 bytes in size.

[0003] Technical Field The present disclosure is in the field of preventing and / or treating Fabry disease using gene therapy. [Background technology]

[0004] The α-galactosidase A (GLA) gene encodes the lysosomal hydrolase, α-galactosidase A (α-GalA), an enzyme that catalyzes the hydrolysis of terminal α-galactosyl moieties of oligosaccharides and polysaccharides.

[0005] Fabry disease is an X-linked lysosomal storage disorder caused by mutations in the GLA gene. Deficiency of α-Gal A activity leads to the progressive, systematic accumulation of its primary substrate, globotriaosylceramide (Gb3), and its deacetylated, soluble form, globotriaosylsphingosine (lyso-Gb3). Long-term accumulation of these substrates leads to renal disease, skin disorders, cardiac disease, corneal dystrophy (e.g., corneal and lens opacities), and / or cerebrovascular disease, resulting in reduced life expectancy. Depending on the mutation and residual α-Gal A enzyme level, the disease manifests as classic early-onset Fabry disease in childhood / adolescence or as a weaker (adult) form later in life. Classic Fabry disease occurs when residual enzyme activity is <5% (Arends et al. 2017) and typically affects males. Early symptoms may include periodic acrotactile dysesthesia, angiokeratoma, corneal and lens opacities, progressive renal insufficiency, cardiac disease, and cerebrovascular events. Attenuated, or adult, forms of Fabry disease generally affect only one organ system, usually the heart or kidneys.

[0006] In both classical and adult forms, the current standard of care is enzyme replacement therapy (ERT) using recombinant α-Gal A, FABRAZYME® (agalsidase beta or equivalent), or chaperone therapy, available only to patients with qualifying mutations. Infusion of recombinant α-Gal A into the bloodstream allows its transport to secondary tissues via mannose-6-phosphate receptor-mediated uptake (cross-collection). However, the short half-life of the recombinant α-Gal A used in ERT (approximately 1 hour in plasma) (Clarke et al. 2007) necessitates lifelong infusions (Clarke et al. 2007), which are associated with the risk of infusion-related reactions in a significant proportion of patients, some of which are severe. Furthermore, a significant proportion of patients eventually develop antibodies against the recombinant enzyme, which may affect the activity of the ERT enzyme and therefore may not clear all of the substrate from organs such as the kidneys (Linthorst et al. 2004).

[0007] Recombinant α-Gal A products have been developed with longer half-lives that allow for less frequent administration, however, these still require long-term administration, are associated with the risk of infusion-related reactions and / or inactivity due to neutralizing antibodies, and α-Gal A levels are expected to still fluctuate significantly over time.

[0008] Therefore, alternative therapies that address unmet needs in Fabry disease are needed. Summary of the Invention [Means for solving the problem]

[0009] Disclosed herein are methods for expressing at least one α-galactosidase A (α-Gal A) protein in a cell. In some embodiments, the methods include administering to a cell an expression construct comprising a mutated WPRE sequence, optionally a mut6 WPRE sequence, and a GLA transgene encoding at least one α-Gal A protein, such that the α-Gal A protein is expressed in the cell.

[0010] In some embodiments, the expression construct comprises a wild-type GLA sequence or a codon-optimized GLA sequence.

[0011] In some embodiments, the expression construct comprises one or more of an enhancer, a promoter, an intron, a sequence encoding a signal peptide and / or a polyadenylation signal, and the mutated WPRE sequence, optionally the mut6 mutated WPRE sequence, and the GLA transgene encoding at least one α-Gal A protein are positioned between the signal peptide and the sequence encoding the polyadenylation signal.

[0012] In some embodiments, the expression construct comprises the sequence of SEQ ID NO:9.

[0013] In some embodiments, the cell is in a subject with Fabry disease.

[0014] In some embodiments, the cell is in a male subject.

[0015] In some embodiments, the expression construct is administered in a pharmaceutically acceptable carrier.

[0016] In some embodiments, the pharmaceutically acceptable carrier comprises phosphate buffered saline containing CaCl 2 , MgCl 2 , NaCl, sucrose, and Kolliphor (poloxamer) P188.

[0017] In some embodiments, the expression construct sequence comprises a sequence shown in Table 1, and the expression construct is delivered to the cell by an AAV viral vector.

[0018] In some embodiments, the AAV viral vector serotype is AAV2 / 6.

[0019] In some embodiments, the expression construct is administered to the subject at a dose of between about 5.0E+12 and 1.0E+14 vector genomes per kilogram (vg / kg).

[0020] In some embodiments, the expression construct is administered to the subject's liver. In other embodiments, the expression vector is administered to the subject by intravenous infusion. In yet other embodiments, the expression construct is administered to the subject in a single dose.

[0021] In some embodiments, the subject is administered an immunosuppressant prior to and / or during administration of the expression construct, hi some embodiments, the immunosuppressant comprises prednisone.

[0022] In some embodiments, expression of at least one alpha-galactosidase A (alpha-Gal A) protein is maintained for at least 3 months, at least 9 months, or at least 12 months.

[0023] In some embodiments, the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in a subject by at least about two-fold to about nine-fold compared to an untreated subject.

[0024] In some embodiments, the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in a subject by at least about 80% compared to an untreated subject.

[0025] In some embodiments, the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in one or more of the subject's plasma, liver, heart, kidney, or spleen.

[0026] In some embodiments, an expression construct produced in a HEK293 cell line results in GLA levels in a subject that are about 21-fold higher compared to GLA levels in a subject administered an expression construct produced in an Sf9 cell line.

[0027] In some embodiments, the α-Gal A protein activity in the subject is between about 100-fold and 1,500-fold greater than physiologically normal / wild-type.

[0028] In some embodiments, the α-Gal A protein expressed from the transgene is active in the kidney, liver, and heart of the subject.

[0029] In some embodiments, the GLA transgene is maintained extrachromosomally and does not integrate into the genome of the cell.

[0030] In some embodiments, one or more nucleases are administered that cleave the endogenous albumin gene in the subject's liver cells such that the transgene is integrated into and expressed from the albumin gene.

[0031] The present invention provides a genetically modified cell that comprises an exogenous GLA transgene, which is produced by the method described herein.In some embodiments, the cell is a stem cell or progenitor cell.In some embodiments, the cell is a liver or muscle cell.In some embodiments, the GLA transgene is maintained extrachromosomally and is not integrated into the genome of the cell.In some embodiments, the GLA transgene is integrated into the genome of the cell.

[0032] Also provided are methods for preventing, inhibiting, or treating Fabry disease or one or more symptoms associated with Fabry disease. The methods can include administering to a subject in need thereof an expression construct comprising a mutated WPRE sequence, optionally a mut6 WPRE sequence, and a GLA transgene encoding at least one α-Gal A protein.

[0033] In some embodiments, the symptoms include one or more of: normal or above baseline Gb3 levels, normal or above baseline lyso-Gb3 levels, renal disease, cardiac disease, acrotactile dysesthesia, angiokeratoma, gastrointestinal pain, corneal and lens opacities, or cerebrovascular disease. As described herein, baseline can refer to any starting measurement, i.e., a measurement obtained before a specific treatment is administered. In some embodiments, the subject is male and has less than about 5% α-Gal A enzyme activity. In some embodiments, the expression construct comprises a wild-type GLA sequence or a codon-optimized GLA sequence. In some embodiments, the expression construct further comprises one or more of an enhancer, a promoter, an intron, a sequence encoding a signal peptide and / or a polyadenylation signal, wherein the mutant WPRE sequence, optionally the mut6 mutant WPRE sequence, and the GLA transgene encoding at least one α-Gal A protein are positioned between the signal peptide and the sequence encoding the polyadenylation signal. In some embodiments, the expression construct is administered in a pharmaceutically acceptable carrier. In some embodiments, the pharmaceutically acceptable carrier comprises phosphate buffered saline containing CaCl 2 , MgCl 2 , NaCl, sucrose, and Kolliphor (poloxamer) P188.

[0034] In other embodiments, the expression construct sequence comprises a sequence shown in Table 1, and the expression construct is delivered to the subject's cells by an AAV viral vector. In some embodiments, the AAV viral vector serotype is AAV2 / 6.

[0035] In some embodiments, the expression construct is administered to the subject at a dose of between about 5.0E+12 and 1.0E+14 vector genomes per kilogram (vg / kg). In some embodiments, the expression construct is administered to the subject's liver. In some embodiments, the expression vector is administered to the subject by intravenous infusion. In some embodiments, the expression construct is administered to the subject in only one dose.

[0036] In some embodiments, the subject is administered an immunosuppressant prior to and / or during administration of the expression construct. In some embodiments, the immunosuppressant comprises prednisone. In some embodiments, expression of at least one α-galactosidase A (α-Gal A) protein is maintained for at least 3 months, at least 9 months, or at least 12 months.

[0037] In another embodiment, the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in a subject by at least about 3- to about 9-fold compared to an untreated subject.

[0038] In some embodiments, the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in a subject by at least about 80% compared to an untreated subject.

[0039] In some embodiments, the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in one or more of the subject's plasma, liver, heart, kidney, or spleen.

[0040] In some embodiments, the expression construct is produced in a HEK293 cell line and the GLA level in the subject is 21-fold higher compared to the GLA level in a subject administered an expression construct produced in an Sf9 cell line.

[0041] In some embodiments, the α-Gal A protein activity in the subject is between about 100-fold and 1,500-fold greater than normal / wild-type.

[0042] In some embodiments, the α-Gal A protein expressed from the transgene is active in the kidney, liver, and heart of the subject.

[0043] In some embodiments, the GLA transgene is maintained extrachromosomally and does not integrate into the genome of the subject's cells.

[0044] In some embodiments, the methods involve administering one or more nucleases that cleave the endogenous albumin gene in liver cells of the subject such that the transgene is integrated into and expressed from the albumin gene.

[0045] Described herein are compositions comprising an expression construct, the expression construct comprising a mutated WPRE sequence, optionally a mut6 mutated WPRE sequence, and a GLA transgene encoding at least one α-Gal A protein for the treatment of Fabry disease.

[0046] In some embodiments, the composition comprises a pharmaceutically acceptable carrier. The composition of claim 56, wherein the pharmaceutically acceptable carrier comprises CaCl, MgCl, NaCl, sucrose, and Kolliphor (poloxamer) P188.

[0047] In some embodiments, the composition comprises a wild-type GLA sequence or a codon-optimized GLA sequence.

[0048] In some embodiments, the composition comprises one or more of an enhancer, a promoter, an intron, a sequence encoding a signal peptide and / or a polyadenylation signal, and the mutated WPRE sequence, optionally the mut6 mutated WPRE sequence, and the GLA transgene encoding at least one α-Gal A protein are positioned between the signal peptide and the sequence encoding the polyadenylation signal.

[0049] In some embodiments, the composition comprises a sequence shown in Table 1, and the expression construct is delivered to the cell by an AAV viral vector. In some embodiments, the composition comprises an AAV viral vector serotype, AAV2 / 6.

[0050] In some embodiments, the composition comprises an expression construct comprising between about 5.0E+12 and 1.0E+14 vector genomes per kilogram of subject (vg / kg).

[0051] In some embodiments, the composition comprises an expression construct comprising the sequence of SEQ ID NO:9.

[0052] Also provided is a method for producing α-Gal A protein for the treatment of Fabry disease, comprising expressing α-Gal A protein in an isolated cell by the method of any one of claims 1 to 4, and isolating the α-Gal A protein produced by the cell.

[0053] A delivery vector is presented containing a mutated WPRE sequence, optionally a mut6 WPRE sequence, and a GLA transgene for use in the methods described herein.

[0054] In some embodiments, the delivery vector is a viral vector or a lipid nanoparticle (LNP). In some embodiments, the viral vector comprises AAV2 / 6, and the viral vector delivers the expression construct to at least 50%, at least 60%, at least 70%, or at least 80% of cells.

[0055] Also provided herein is the use of an expression construct, AAV vector, and / or genetically modified cell according to any one of the preceding claims for the treatment of Fabry disease. In some embodiments, the enhancer comprises SEQ ID NO:2, the promoter comprises SEQ ID NO:3, the intron comprises SEQ ID NO:4, the GLA transgene comprises SEQ ID NO:5, the mutated WPRE sequence comprises SEQ ID NO:6, and the polyadenylation signal comprises SEQ ID NO:7.

[0056] In some embodiments, the composition comprises an enhancer of SEQ ID NO: 2, a promoter of SEQ ID NO: 3, an intron of SEQ ID NO: 4, a GLA transgene of SEQ ID NO: 5, a mutated WPRE sequence of SEQ ID NO: 6, and a polyadenylation signal of SEQ ID NO: 7. [Brief explanation of the drawings]

[0057] [Figure 1A] 1 shows a schematic diagram of a construct encoding a GLA gene designated Variant #4. The Variant #4 construct includes an enhancer (e.g., APOE), a promoter (e.g., hAAT), an intron sequence (e.g., HBB-IGG), a signal peptide (e.g., GLA), a GLA coding sequence (e.g., "GLAco"), and a polyadenylation signal (e.g., bGH). [Figure 1B]1 shows a schematic diagram illustrating a construct encoding the GLA gene containing a mutant woodchuck hepatitis virus post-transcriptional regulatory element (WPRE) (also known as "mut6" or "WPREmut6 v1"), designated variant #21. The variant #21 construct also contains an enhancer (e.g., APOE); a promoter (e.g., hAAT); an intron sequence (e.g., HBB-IGG); a signal peptide (e.g., GLA); a GLA coding sequence (e.g., "GLAco"); and a polyadenylation signal (e.g., bGH). [Figure 2] Graphs showing plasma GLA activity in individual GLA knockout (GLAKO) mice from the indicated Groups 2 to 4 or control animals treated with the indicated variant #4 construct over 85 days. Group 1 was treated with formulation buffer ("Formulation"). Group 2 was treated with a 2.0E+12 vg / kg dose of the construct, Group 3 was treated with a 5.0E+12 vg / kg dose of the construct, and Group 4 was treated with a 5.0E+13 vg / kg dose of the construct. [Figure 3] 1 is a graph showing plasma GLA activity in the indicated groups 2 to 4 GLAKO mice or control animals treated with an expression construct (variant #4 expression construct) over 85 days. Group 1 received formulation buffer ("Formulation"). Group 2 was treated with the construct at a dose of 2.0E+12 vg / kg, Group 3 was treated with the construct at a dose of 5.0E+12 vg / kg, and Group 4 was treated with the construct at a dose of 5.0E+13 vg / kg. [Figure 4A] 1 is a graph showing α-Gal A activity in liver lysates from the indicated groups of animals treated with the variant #4 expression construct or control animals: Group 2 was dosed at 2.0E+12 vg / kg, Group 3 was dosed at 5.0E+12 vg / kg, and Group 4 was dosed at 5.0E+13 vg / kg. [Figure 4B]1 is a graph showing α-Gal A activity in kidney lysates from the indicated groups of animals treated with an expression construct (Variant #4 Expression Construct) or control animals: Group 2 was treated with the construct at a dose of 2.0E+12 vg / kg, Group 3 was treated with the construct at a dose of 5.0E+12 vg / kg, and Group 4 was treated with the construct at a dose of 5.0E+13 vg / kg. [Figure 4C] 1 is a graph showing α-Gal A activity in cardiac lysates from the indicated groups of animals treated with expression constructs (variant #4 expression constructs) or control animals: Group 2 was dosed at 2.0E+12 vg / kg, Group 3 was dosed at 5.0E+12 vg / kg, and Group 4 was dosed at 5.0E+13 vg / kg. [Figure 5A] 1 is a graph showing Lyso-Gb3 substrate concentrations in plasma, spleen, liver, heart, and kidney of the indicated groups of GLAKO mice treated with an expression construct (variant #4 expression construct) or control animals at 91 days post-treatment. For each tissue, the bars represent, from left to right, Group 1 animals receiving formulation buffer; Group 2 (10 animals) receiving the construct at a dose of 2.0E+12 vg / kg; Group 3 (9 animals) receiving the construct at a dose of 5.0E+12 vg / kg; and Group 4 (20 animals) receiving the construct at a dose of 5.0E+13 vg / kg. As shown, Lyso-Gb3 substrate concentrations in Groups 2 to 4 are lower compared to the control Group 1 in all tissues tested. The lower limit of quantitation (LLOQ) is also indicated by a dashed line. [Figure 5B]1 is a graph showing Gb3 levels in plasma, spleen, liver, heart, and kidney of animals of the indicated groups treated with expression construct (variant #4) or control animals. For each tissue, the bars represent, from left to right, Group 1 animals receiving formulation buffer; Group 2 (10 animals) receiving the construct at a dose of 2.0E+12 vg / kg; Group 3 (9 animals) receiving the construct at a dose of 5.0E+12 vg / kg; and Group 4 (20 animals) receiving the construct at a dose of 5.0E+13 vg / kg. As shown, Gb3 substrate concentrations are lower in Groups 2 through 4 compared to control Group 1 in all tissues tested. The lower limit of quantitation (LLOQ) is also indicated by a dashed line. [Figure 6A] Graphs showing the percent of Gb3 and Lyso-Gb3 substrate remaining in plasma, spleen, liver, heart, and kidney of the indicated groups of animals treated with the variant #4 expression construct or control animals. [Figure 6B] Graphs showing the percent of Gb3 and Lyso-Gb3 substrate remaining in plasma, spleen, liver, heart, and kidney of the indicated groups of animals treated with the variant #4 expression construct or control animals. [Figure 7A] 1A and 1B show in vitro α-Gal A activity in the supernatants of human HepG2 cells treated with either the cDNA variant #4 or cDNA variant #21 constructs. Transgene activity was increased by at least approximately 9-fold in cells treated with 300,000 AAVvg / cell using an expression construct containing the WPRE sequence (construct variant #21 as shown in FIG. 1B) compared to the activity when construct variant #4 was used as the expression construct. Transgene activity was increased by at least approximately 7-fold in cells treated with 100,000 AAVvg / cell using an expression construct containing the WPRE sequence (variant #21 as shown in FIG. 1B) compared to the activity when construct variant #4 was used as the expression construct. [Figure 7B]1A and 1B ) show in vitro α-Gal A activity in the supernatants of induced pluripotent hepatocytes ("iCell Hepatocytes") treated with either the cDNA variant #4 or cDNA variant #21 constructs. Transgene activity was increased by at least approximately fourfold in cells treated with 30,000 AAVvg / cell using an expression construct containing a WPRE sequence (variant #21 as shown in FIG. 1B ) compared to the activity when variant #4 was used as the expression construct. Transgene activity was increased by at least approximately threefold in cells treated with 100,000 AAVvg / cell using an expression construct containing a WPRE sequence (variant #21 as shown in FIG. 1B ) compared to the activity when variant #4 was used as the expression construct. [Figure 8] 1 is a graph showing increased GLA A activity with increasing construct dose in the plasma of wild-type mice treated with a dose of 2.0E+12vg / kg or 5E+11vg / kg of the variant #21 construct or a dose of 2.0E+12vg / kg or 5E+11vg / kg of the variant #4 construct or formulation buffer. [Figure 9] 1 is a graph showing α-Gal A plasma activity in C57BL / 6 mice over 29 days after treatment with either the variant #21 construct at a dose of 5.0E+13 vg / kg, the variant #21 construct at a dose of 5.0E+12 vg / kg, the variant #4 construct at a dose of 5.0E+13 vg / kg, the variant #4 construct at a dose of 5.0E+12 vg / kg, or formulation buffer. As shown, the variant #21 construct can produce more than 1,500-fold physiologically normal plasma α-Gal A activity levels in C57BL / 6 mice. [Figure 10]Figure 1 shows an in situ DNA hybridization image stained for the AAV vector genome in a liver sample from a GLAKO mouse treated with the Variant #4 construct at a dose of 5.0E+13 vg / kg, targeting a non-coding sequence. In this sample, 57.5% of liver cells stained positive for the AAV vector genome at 90 days post-treatment. [Figure 11]

[0033] Figure 1 shows an in situ DNA hybridization image stained for the AAV vector genome in a liver sample from a wild-type non-human primate (NPH) treated with a dose of 6.0E+13 vg / kg of the variant #4 construct, targeting a non-coding sequence. In this sample, 57.5% of liver cells stained positive for the AAV vector genome after 60 days of treatment. [Figure 12A] 10 is a graph showing the percentage of hepatocytes containing hGLA cDNA in GLAKO mice treated with the variant #4 construct at doses of 2E+12vg / kg, 5E+12vg / kg, 5E+13vg / kg, or formulation buffer as a control. [Figure 12B] 10 is a graph showing the percent of hepatocytes containing hGLA cDNA in cynomolgus monkey NHPs treated with the variant #4 construct at doses of 6E+12vg / kg, 1E+13vg / kg, 3E+13vg / kg, 6E+13vg / kg or formulation buffer as a control. [Figure 12C] 1 is a graph showing the percentage of liver cells containing hGLA cDNA in individual GLAKO mice treated with doses of 2E+12vg / kg, 5E+12vg / kg, 5E+13vg / kg of the variant #4 construct, or with formulation buffer ("0") as a control. [Figure 12D] 10 is a graph showing the percent of hepatocytes containing hGLA cDNA in individual cynomolgus monkey NHPs treated with doses of 6E+12vg / kg, 1E+13vg / kg, 3E+13vg / kg, 6E+13vg / kg of the variant #4 construct or formulation buffer ("0") as a control. [Figure 13A]10 is a graph showing NHP plasma hGLA protein concentrations for individual animals treated with the variant #4 construct at a dose of 6.0E+12 vg / kg or with formulation buffer. [Figure 13B] 10 is a graph showing NHP plasma hGLA activity for individual animals treated with the variant #4 construct at a dose of 6.0E+12 vg / kg or formulation buffer. [Figure 13C] 10 is a graph showing NHP plasma hGLA protein concentrations for individual animals treated with the variant #4 construct at doses of 1.0E+13vg / kg or 3.0E+13vg / kg. [Figure 13D] 10 is a graph showing NHP plasma hGLA activity for individual animals treated with the variant #4 construct at doses of 1.0E+13vg / kg or 3.0E+13vg / kg. [Figure 13E] 10 is a graph showing NHP plasma hGLA protein concentrations for individual animals treated with the variant #4 construct at a dose of 6.0E+13vg / kg or 6.0E+13vg / kg without immunosuppressants. [Figure 13F] 10 is a graph showing NHP plasma hGLA activity for individual animals treated with the variant #4 construct at a dose of 6.0E+13vg / kg or 6.0E+13vg / kg without immunosuppressants. [Figure 14] Western blot analysis of hGLA and corresponding mRNA levels in NHP liver samples from individual animals at day 60 after treatment with the variant #4 construct or formulation buffer at doses of 6.0E+12vg / kg, 1.0E+13vg / kg, 3.0E+13vg / kg, 6.0E+13vg / kg, and 6.0E+13vg / kg without immunosuppressants. As shown, hGLA protein levels increase with construct dose, and protein levels correlate with mRNA levels in most samples. DETAILED DESCRIPTION OF THE INVENTION

[0058] Disclosed herein are methods and compositions for treating or preventing Fabry disease. The present specification provides methods and compositions for the introduction of a GLA transgene encoding a protein that is missing or poorly expressed in a subject with Fabry disease, such that the gene is expressed in the liver and the therapeutic (replacement) protein is expressed. The present specification also describes the modification of cells (e.g., precursor or mature RBCs, iPSCs, or liver cells) so that the cells produce high levels of a therapeutic substance, and the introduction of a population of these modified cells into a patient will supply the needed protein. The transgene can encode a desired protein or structural RNA that is therapeutically beneficial in a patient in need thereof.

[0059] Gene therapy using adeno-associated virus (AAV) vectors has shown great promise in both preclinical and clinical trials to efficiently deliver therapeutic transgenes to the liver, with reports of stable levels of transgene expression for up to 6 years in hemophilia B (Lheriteau E, Davidoff E, Nathwani AC.Haemophilia gene therapy: Progress and challenges.Blood Rev. 2015 Sep;29(5):321-8).

[0060] One area of ​​particular promise is the ability to add transgenes to cells that cause them to express products that were not previously produced by the cell, or that were produced suboptimally. Examples of the use of this technology include the insertion of genes encoding therapeutic proteins, the insertion of coding sequences that encode proteins that are somehow deficient in the cell or individual, and the insertion of sequences that encode structural nucleic acids such as microRNAs.

[0061] A transgene can be introduced into a cell and maintained in a variety of ways. According to the "cDNA" approach, a transgene is introduced into a cell so that the transgene is maintained extrachromosomally rather than by integration into the chromatin of the cell. The transgene can be maintained in a circular vector (e.g., a plasmid or a non-integrating viral vector such as AAV or lentivirus), in which case the vector can include transcriptional control sequences such as a promoter, an enhancer, a polyA signal sequence, an intron, and a splicing signal (U.S. Pat. No. 10,143,760).

[0062] Transgenes can be delivered to cells by various methods, so that transgenes are integrated into the cell's own genome and retained there.Recently, a strategy for transgene integration has been developed that uses site-specific nuclease cleavage for targeted insertion into selected genomic loci (see, for example, U.S. Patent No. 7,888,121 owned by the present applicant).Nucleases, such as zinc finger nucleases (ZFN), transcription activator-like effector nucleases (TALEN), or nuclease systems, such as RNA-guided CRISPR / Cas systems (using engineered guide RNA), can be used to be specific to target genes, and transgene constructs can be inserted by homology-directed repair (HDR) or by end capture during non-homologous end joining (NHEJ) driven process. See, for example, U.S. Patent Nos. 9,877,988; 9,816,074; 9,616,090; 9,873,894; 9,597,357; 9,567,573; 9,458,205; 9,447,434; 9,394,545; 9,255,250; 9,222,105; 9,206,404; 9,200,266; 9,045,763; 9,005,973; 9,150,847; 8,956,828; 8,945,868; Same No. 8,895,264; Same No. 8,771,985; Same No. 8,703,489; Same No. 8,586,526; Same No. 8,106,255; Same No. 6,534,261; Same No. 6,599,692; Same No. 6,503,717; Same No. 6,689,558; Same No. 7,067,317; See U.S. Patent Nos. 7,262,054; 7,888,121; 7,972,854; 7,914,796; 7,951,925; 8,110,379; 8,409,861; U.S. Patent Publication Nos. 20030232410 and 20050064474.

[0063] A transgene can be integrated into a highly expressed safe harbor location, such as the albumin gene (see U.S. Pat. No. 9,394,545). This approach has been called the in vivo protein replacement platform or IVPRP. According to this approach, a transgene is inserted into a safe harbor (e.g., albumin) gene by nuclease-mediated targeted insertion, where expression of the transgene is driven by the albumin promoter. The transgene is engineered to contain a signal sequence that aids in the secretion / excretion of the protein encoded by the transgene.

[0064] "Safe harbor" loci include the AAVS1, HPRT, albumin, and CCR5 genes in human cells, and the Rosa26 locus in mouse cells. See, e.g., U.S. Patent Nos. 9,877,988; 9,567,573; 9,447,434; 9,394,545; 9,222,105; 9,206,404; 9,150,847; 8,895,264; 8,771,985; 8,106,25 See U.S. Patent Publication Nos. 5, 7,888,121, 7,972,854, 7,914,796, 7,951,925, 8,110,379, 8,409,861, and 8,586,526; U.S. Patent Publication Nos. 20030232410 and 20060063231. Nuclease-mediated integration allows for precise transgene placement to minimize the risk of gene silencing or activation of nearby oncogenes, thereby offering the potential for improved transgene expression, increased safety, and durability of expression compared to standard integration approaches that rely on random integration of the transgene. Nuclease-mediated transgene insertion of genes encoding therapeutic Fabry proteins is described in U.S. Publication No. 20180117181.

[0065] While delivery of transgenes to target cells is one hurdle that must be overcome to fully realize this technology, another challenge is ensuring that, once the transgene is inserted into a cell and expressed, the encoded gene product reaches the required location within the organism and is produced at a local concentration sufficient to be effective. For diseases characterized by protein deficiencies or the presence of abnormal, non-functional proteins, delivery of transgene-encoded wild-type proteins could be extremely useful.

[0066] Lysosomal storage diseases (LSDs) are a group of rare metabolic monogenic disorders characterized by the deficiency of individual functional lysosomal proteins typically involved in the breakdown of waste lipids, glycoproteins, and mucopolysaccharides. These diseases are characterized by the accumulation of these compounds in cells due to the inability to process them for reuse due to the malfunction of specific enzymes. The most common examples are Gaucher disease (glucocerebrosidase deficiency - GBA), Fabry disease (alpha-galactosidase A deficiency - GLA), Hunter disease (iduronate-2-sulfatase deficiency - IDS), Hurler disease (alpha-L-iduronidase deficiency - IDUA), Pompe disease (alpha-glucosidase (GAA)), and Niemann-Pick disease (sphingomyelin phosphodiesterase 1 deficiency - SMPD1). Collectively, LSDs affect approximately 1 in 7,000 people. See also U.S. Patent Nos. 9,877,988 and 9,956,247 and U.S. Publication No. 20160060656.

[0067] For example, Fabry disease is an X-linked disorder of glycosphingolipid metabolism caused by a deficiency of the enzyme α-galactosidase A (α-GalA). It is associated with the progressive deposition of glycosphingolipids, including globotriaosylceramide (also known as GL-3 and Gb3) and globotriaosylsphingosine (lyso-Gb3), galabiosylceramide, and type B substances. Symptoms of the disease are diverse and can include burning, tingling (acroptactile paraesthesia), or episodes of severe pain called "Fabry attacks," which can last from minutes to days. Other symptoms include decreased sweating, low exercise tolerance, a reddish-purple rash called angiokeratoma, eye abnormalities, gastrointestinal problems, cardiac problems, including cardiac enlargement and heart attacks, kidney problems that can lead to kidney failure, and CNS problems. The average life expectancy of individuals with Fabry disease is significantly reduced.

[0068] Current treatments for Fabry disease involve enzyme replacement therapy (ERT) using two different preparations of human α-Gal A, agalsidase beta, or agalsidase alfa, which require costly and time-consuming infusions (generally between approximately 0.2 and 1 mg / kg) every two weeks. Such treatments only treat symptoms, not cures. Therefore, patients must receive repeated doses of these proteins until death, and in some cases, they may develop neutralizing antibodies against the injected proteins.

[0069] Furthermore, adverse reactions, including immune responses such as the development of anti-α-Gal A antibodies in subjects treated with α-Gal A preparations, are associated with ERT. Indeed, α-Gal A antibodies developed in 50% of men treated with agalsidase alfa and 88% of men treated with agalsidase beta. Importantly, a significant proportion of these antibodies are neutralizing, thus reducing the therapeutic impact of treatment (Meghdari et al. (2015) PLoS One 10(2):e0118341. Doi:10.1371 / journal.pone.0118341). Furthermore, ERT does not halt disease progression in all patients.

[0070] Thus, methods and compositions can be used to express one or more therapeutically beneficial α-Gal A proteins from a transgene, for example, delivered by a viral vector, or from a cDNA construct inserted into any locus (e.g., the highly expressed albumin locus) to compensate for the defective and / or missing enzyme in Fabry disease. Additionally, the present disclosure provides methods and compositions for the treatment of Fabry disease (including the alleviation of one or more symptoms) by inserting a transgene sequence into a highly expressed locus in cells, such as liver cells. Included in the disclosure are methods and compositions for the delivery of an α-Gal A-encoding transgene to the liver of a subject in need thereof by a viral vector, in which case the virus may be introduced by injection into the peripheral venous system or by direct injection into a blood vessel (e.g., the portal vein) that leads to the liver. The methods and compositions can be used to induce insertion of the transgene into a safe harbor locus (e.g., albumin) or to induce extrachromosomal maintenance of the viral cDNA construct in liver cells. In either case, the transgene is highly expressed and provides therapeutic benefit to Fabry patients in need.

[0071] Furthermore, transgenes can be introduced into patient-derived cells for use in eventual transplantation, such as patient-derived induced pluripotent stem cells (iPSCs) or other types of stem cells (embryonic or hematopoietic). Particularly useful is the insertion of therapeutic transgenes into hematopoietic stem cells for transplantation into patients in need thereof. As the stem cells differentiate into mature cells, they will contain high levels of the therapeutic protein for delivery to tissues.

[0072] overview The practice of the methods, and the preparation and use of the compositions disclosed herein employ, unless otherwise indicated, conventional techniques in molecular biology, biochemistry, chromatin structure and analysis, computational chemistry, cell culture, recombinant DNA, and related fields, which are within the skill of the art. These techniques are fully explained in the literature, see, e.g., Sambrook et al. MOLECULAR CLONING: A LABORATORY MANUAL, Second edition, Cold Spring Harbor Laboratory Press, 1989, and Third edition, 2001;Ausubel et al., CURRENT PROTOCOLS IN MOLECULAR BIOLOGY, John Wiley & Sons, New York, 1987 and periodically updated editions; the series METHODS IN ENZYMOLOGY, Academic Press, San Diego; Wolffe, CHROMATIN STRUCTURE AND FUNCTION, Third edition, Academic Press, San Diego, 1998; METHODS IN ENZYMOLOGY, Vol. 304, "Chromatin" (P.M. Wassarman and A.P. Wolffe, eds.), Academic Press, San Diego, 1999; and METHODS IN MOLECULAR BIOLOGY, Vol. 119, "Chromatin Protocols" (P.B. Becker, ed.), Humana Press, Totowa, 1999.

[0073] definition The terms "nucleic acid," "polynucleotide," and "oligonucleotide" are used interchangeably and refer to a deoxyribonucleotide or ribonucleotide polymer in a linear or circular configuration, and in either single- or double-stranded form. For purposes of this disclosure, these terms should not be construed as limiting with respect to the length of the polymer. These terms may encompass known analogues of natural nucleotides as well as nucleotides that are modified in the base, sugar, and / or phosphate moieties (e.g., phosphorothioate backbones). Generally, an analogue of a particular nucleotide has the same base-pairing specificity; i.e., an analogue of A will base pair with T.

[0074] The terms "polypeptide," "peptide," and "protein" are used interchangeably to refer to a polymer of amino acid residues. The terms also apply to amino acid polymers in which one or more amino acids are chemical analogues or modified derivatives of a corresponding naturally occurring amino acid.

[0075] "Binding" refers to a sequence-specific, non-covalent interaction between macromolecules (e.g., between a protein and a nucleic acid). Not all components of a binding interaction need be sequence-specific (e.g., contacts with phosphate residues in a DNA backbone), as long as the interaction as a whole is sequence-specific. Such interactions generally occur in the presence of a single molecule. -6 M -1 The following dissociation constants (K d "Affinity" refers to the strength of binding; increased binding affinity is characterized by a lower K d is correlated with.

[0076] A "binding domain" is a molecule that can non-covalently bind to another molecule. A binding molecule can bind, for example, to a DNA molecule (a DNA-binding protein such as a zinc finger protein or a TAL-effector domain protein, or a single-guide RNA), an RNA molecule (an RNA-binding protein), and / or a protein molecule (a protein-binding protein). In the case of a protein-binding molecule, it can bind to itself (forming a homodimer, homotrimer, etc.) and / or it can bind to one or more molecules of a different protein or proteins. A binding molecule can have two or more types of binding activity. For example, a zinc finger protein has DNA-binding, RNA-binding, and protein-binding activity. Thus, DNA-binding molecules, including the DNA-binding components of artificial nucleases and transcription factors, include, but are not limited to, ZFPs, TALEs, and sgRNAs.

[0077] A "zinc finger DNA-binding protein" (or binding domain) is a protein, or a domain within a larger protein, that binds to DNA in a sequence-specific manner by one or more zinc fingers; this is a region of amino acid sequence within the binding domain, and this structure is stabilized by the coordination of a zinc ion. The term zinc finger DNA-binding protein is often abbreviated as zinc finger protein or ZFP. Artificial nucleases and transcription factors may contain a ZFP DNA-binding domain and a functional domain (the nuclease domain of a ZFN or the transcriptional regulatory domain of a ZFP-TF). The term "zinc finger nuclease" includes single ZFNs as well as paired ZFNs that dimerize to cleave a target gene.

[0078] A "TALE DNA binding domain" or "TALE" is a polypeptide that contains one or more TALE repeat domains / units. The repeat domain is responsible for binding of the TALE to its cognate target DNA sequence. A single "repeat unit" (also called a "repeat") is generally 33-35 amino acids in length and exhibits at least some sequence homology to other TALE repeat sequences in naturally occurring TALE proteins. See, for example, U.S. Patent No. 8,586,526. Artificial nucleases and transcription factors may contain a TALE DNA binding domain and a functional domain (the nuclease domain of a TALEN or the transcriptional regulatory domain of a TALEN-TF). The term "TALEN" includes a single TALEN as well as a pair of TALENs that dimerize to cleave a target gene.

[0079] Zinc finger and TALE binding domains can be "engineered" to bind to a given nucleotide sequence, for example, by manipulating the recognition helix region (modifying one or more amino acids) of a naturally occurring zinc finger or TALE protein. Thus, engineered DNA binding proteins (zinc fingers or TALEs) are proteins that do not occur in nature. A non-limiting example of a method for engineering DNA binding proteins is design and selection. Engineered DNA binding proteins are proteins that do not occur in nature whose design / composition is primarily due to rational criteria. Rational criteria for design include the application of substitution rules and computerized algorithms to process information from databases storing information on existing ZFP and / or TALE designs and binding data. See, e.g., U.S. Patent Nos. 8,568,526; 6,140,081; 6,453,242; and 6,534,261, see also WO98 / 53058; WO98 / 53059; WO98 / 53060; WO02 / 016536; and WO03 / 016496.

[0080] "Selected" zinc finger proteins or TALEs are proteins not found in nature, and their generation primarily results from experimental processes such as phage display, interaction traps, or hybrid selection. See, e.g., Patent Nos. 8,586,526; 5,789,538; US 5,925,523; US 6,007,988; US 6,013,453; US 6,200,759; WO95 / 19431; WO96 / 06166; WO98 / 53057; WO98 / 54311; WO00 / 27878; WO01 / 60970; WO01 / 88197; WO02 / 099084.

[0081] "Recombination" refers to the process of exchanging genetic information between two polynucleotides. For purposes of this disclosure, "homologous recombination (HR)" refers to a specialized form of such exchange that occurs, for example, by the homology-directed repair mechanism during repair of a double-strand break in a cell. This process is commonly known as "non-crossover gene conversion" or "short-tract gene conversion" because it requires nucleotide sequence homology and involves templated repair of a "target" molecule (i.e., the molecule that has undergone the double-strand break) using a "donor" molecule, resulting in the transfer of genetic information from the donor to the target. While not wishing to be bound by any particular theory, such transfer may involve mismatch correction of heteroduplex DNA that occurs between the cleaved target and the donor, and / or "synthesis-dependent strand annealing," in which the donor is used to resynthesize the genetic information that will become part of the target, and / or related processes. Such specialized HR often results in alteration of the sequence of the target molecule such that some or all of the sequence of the donor polynucleotide is incorporated into the target polynucleotide.

[0082] In the disclosed methods, one or more targeted nucleases described herein create a double-stranded break at a predetermined site in a target sequence (e.g., cellular chromatin), and a "donor" polynucleotide having homology to the nucleotide sequence in the region of the break can be introduced into the cell. The presence of the double-stranded break has been shown to promote integration of the donor sequence. The donor sequence can be physically integrated, or the donor polynucleotide can be used as a template for repair of the break by homologous recombination, resulting in all or part of the donor-like nucleotide sequence being introduced into the cellular chromatin. Thus, the original sequence in the cellular chromatin can be modified and, in certain embodiments, converted to the sequence present in the donor polynucleotide. Therefore, the use of the terms "replace" or "substitution" can be interpreted to refer to the replacement of one nucleotide sequence with another nucleotide sequence (i.e., sequence replacement in an informational sense), and does not necessarily require the physical or chemical replacement of one polynucleotide with another.

[0083] In any of the methods described herein, additional pairs of zinc finger or TALEN proteins may be used for additional double-stranded cleavages at additional target sites within the cell.

[0084] In certain embodiments of the methods for targeted recombination and / or replacement and / or modification of sequences within a region of interest in cellular chromatin, the chromosomal sequence is modified by homologous recombination with an exogenous "donor" nucleotide sequence. Such homologous recombination is stimulated by the presence of a double-strand break in cellular chromatin if a sequence homologous to the region of the break is present.

[0085] In any of the methods described herein, the initial nucleotide sequence ("donor sequence") can contain sequence that is homologous, but not identical, to the genomic sequence of the region of interest, thereby stimulating homologous recombination to insert the non-identical sequence into the region of interest. Thus, in certain embodiments, the portion of the donor sequence that is homologous to the sequence of the region of interest exhibits between about 80 and 99% sequence identity (or any integer therebetween) with the genomic sequence to be replaced. In other embodiments, the homology between the donor sequence and the genomic sequence exceeds 99%, for example, when only a single nucleotide differs between the donor sequence and the genomic sequence of more than 100 contiguous base pairs. In certain cases, the non-homologous portion of the donor sequence can contain sequence that is not present in the region of interest, such that new sequence is introduced into the region of interest. In these examples, the non-homologous sequence is generally flanked by 50 to 1,000 base pairs (or any integer value therebetween), or any number of base pairs greater than 1,000, that are homologous or identical to the sequence of the region of interest. In other embodiments, the donor sequence is non-homologous to the original sequence and is inserted into the genome by non-homologous recombination mechanisms.

[0086] Any of the methods described herein can be used for the partial or complete inactivation of one or more target sequences in a cell by targeted integration of a donor sequence that disrupts expression of the gene(s) of interest. Cell lines with partially or completely inactivated genes are also provided.

[0087] Furthermore, the targeted integration method described herein can also be used to integrate one or more exogenous sequences.The exogenous nucleic acid sequence may include, for example, one or more genes or cDNA molecules, or any type of coding or non-coding sequence, as well as one or more control elements (e.g., promoters).In addition, the exogenous nucleic acid sequence may produce one or more RNA molecules (e.g., small hairpin RNA (shRNA), inhibitory RNA (RNAi), microRNA (miRNA), etc.).

[0088] "Cleavage" refers to the cleavage of the covalent backbone of a DNA molecule. Cleavage can be initiated by various methods, including, but not limited to, enzymatic or chemical hydrolysis of phosphodiester bonds. Both single-strand and double-strand breaks are possible, and double-strand breaks can occur as a result of two separate single-strand break events. DNA cleavage can result in the generation of either blunt ends or cohesive ends. In some embodiments, fusion polypeptides are used for targeted double-strand DNA cleavage.

[0089] A "cleavage half-domain" is a polypeptide sequence that forms a complex with a second polypeptide (either the same or different) that has cleavage activity (preferably double-strand cleavage activity). The terms "first and second cleavage half-domains," "+ and - cleavage half-domains," and "right and left cleavage half-domains" are used interchangeably and refer to a pair of cleavage half-domains that dimerize.

[0090] An "engineered cleavage half-domain" is a cleavage half-domain that has been modified to form obligate heterodimers with another cleavage half-domain (e.g., another engineered cleavage half-domain). See U.S. Patent Nos. 7,888,121; 7,914,796; 8,034,598; and 8,823,618, which are incorporated by reference herein in their entireties.

[0091] The term "sequence" refers to a nucleotide sequence of any length, which may be DNA or RNA, and may be linear, circular, or branched, and either single-stranded or double-stranded. The term "donor sequence" refers to a nucleotide sequence to be inserted into a genome. The donor sequence can be of any length, for example, between 2 and 10,000 nucleotides (or any integer value therebetween or greater), preferably between about 100 and 1,000 nucleotides (or any integer therebetween), and more preferably between about 200 and 500 nucleotides.

[0092] A "disease-associated gene" is a gene that is defective in some way in a monogenic disease, non-limiting examples of which include severe combined immunodeficiency, cystic fibrosis, hemophilia, lysosomal storage diseases (e.g., Gaucher disease, Hurler disease, Hunter disease, Fabry disease, Niemann-Pick disease, Tay-Sachs disease, etc.), sickle cell anemia, and thalassemia.

[0093] "Chromatin" is the nucleoprotein structure that comprises the cellular genome. Cellular chromatin contains nucleic acids, primarily DNA, and proteins, including histones and non-histone chromosomal proteins. Most eukaryotic chromatin exists in the form of nucleosomes, where the nucleosome core contains approximately 150 base pairs of DNA associated with an octamer containing two copies each of histones H2A, H2B, H3, and H4, with linker DNA (of varying lengths depending on the organism) extending between the nucleosome cores. A molecule of histone H1 is generally associated with the linker DNA. For the purposes of this disclosure, the term "chromatin" is intended to encompass all types of cellular nucleoproteins in both prokaryotes and eukaryotes. Cellular chromatin includes both chromosomal chromatin and episomal chromatin.

[0094] A "chromosome" is a chromatin complex that contains all or part of a cell's genome. A cell's genome is often characterized by its karyotype, which is the collection of all chromosomes that comprise the cell's genome. A cell's genome may contain one or more chromosomes.

[0095] An "episome" is a replicating nucleic acid, nucleoprotein complex, or other structure containing nucleic acid that is not part of the chromosomal karyotype of a cell. Examples of episomes include plasmids and certain viral genomes.

[0096] A "target site" or "target sequence" is a nucleic acid sequence that defines a portion of a nucleic acid to which a binding molecule will bind, given conditions sufficient for binding.

[0097] An "exogenous" molecule is one that is not normally present in a cell but can be introduced into a cell by one or more genetic, biochemical, or other methods. "Normally present in a cell" is determined with respect to the particular developmental stage and environmental conditions of the cell. Thus, for example, a molecule that is present only during muscle embryonic development is exogenous to mature muscle cells. Similarly, a molecule that is induced by heat shock is exogenous to non-heat-shocked cells. Exogenous molecules can include, for example, functional versions of dysfunctional endogenous molecules or dysfunctional versions of normally functioning endogenous molecules.

[0098] Exogenous molecules can be small molecules, such as those produced by combinatorial chemistry processes, or macromolecules, such as proteins, nucleic acids, carbohydrates, lipids, glycoproteins, lipoproteins, polysaccharides, modified derivatives of any of the above molecules, or any complexes containing one or more of the above molecules. Nucleic acids include DNA and RNA, can be single-stranded or double-stranded, can be linear, branched, or circular, and can be of any length. Nucleic acids include nucleic acids capable of forming duplexes as well as triplex-forming nucleic acids. See, e.g., U.S. Patent Nos. 5,176,996 and 5,422,251. Proteins include, but are not limited to, DNA-binding proteins, transcription factors, chromatin remodeling factors, methylated DNA-binding proteins, polymerases, methylases, demethylases, acetylases, deacetylases, kinases, phosphatases, integrases, recombinases, ligases, topoisomerases, gyrases, and helicases.

[0099] An exogenous molecule may be the same type of molecule as an endogenous molecule, such as an exogenous protein or nucleic acid. For example, an exogenous nucleic acid may include an infectious viral genome, a plasmid, or an episome introduced into a cell, or a chromosome not normally present in the cell. Methods for introducing exogenous molecules into cells are known to those skilled in the art and include, but are not limited to, lipid-mediated introduction (i.e., liposomes containing neutral and cationic lipids), electroporation, direct injection, cell fusion, biolistics, calcium phosphate coprecipitation, DEAE-dextran-mediated introduction, and viral vector-mediated introduction. An exogenous molecule may be the same type of molecule as an endogenous molecule but derived from a species different from that from which the cell is derived. For example, a human nucleic acid sequence may be introduced into a cell line originally derived from a mouse or hamster.

[0100] In contrast, an "endogenous" molecule is one that is normally present in a particular cell at a particular developmental stage under particular environmental conditions. For example, endogenous nucleic acids can include chromosomes, the genome of mitochondria, chloroplasts, or other organelles, or naturally occurring episomal nucleic acids. Additional endogenous molecules can include proteins, such as transcription factors and enzymes.

[0101] A "fusion" molecule is a molecule in which two or more subunit molecules are linked, preferably covalently. The subunit molecules may be of the same chemical type or different chemical types. Examples of the first type of fusion molecule include, but are not limited to, fusion proteins (e.g., fusions between a ZFP or TALE DNA binding domain and one or more activation domains) and fusion nucleic acids (e.g., nucleic acids encoding the fusion proteins described above). Examples of the second type of fusion molecule include, but are not limited to, fusions between a triplex-forming nucleic acid and a polypeptide, and fusions between a minor groove binder and a nucleic acid.

[0102] Expression of a fusion protein in a cell can result from delivery of the fusion protein to the cell, or by delivery of a polynucleotide encoding the fusion protein to the cell, where the polynucleotide is transcribed and the transcript is translated to produce the fusion protein. Trans-splicing, polypeptide cleavage, and polypeptide ligation may also be involved in expression of the protein in the cell. Methods for polynucleotide and polypeptide delivery to cells are presented elsewhere in this disclosure.

[0103] For purposes of this disclosure, a "gene" includes a DNA region that encodes a gene product (see below), as well as all DNA regions that control the production of the gene product, whether or not such control sequences flank the coding and / or transcribed sequence. Thus, a gene includes, but is not necessarily limited to, promoter sequences, terminators, translation control sequences, such as ribosome binding sites and internal ribosome entry sites, enhancers, silencers, insulators, boundary elements, origins of replication, matrix attachment sites, and locus control regions.

[0104] "Gene expression" refers to the conversion of the information contained in a gene into a gene product. A gene product may be the direct transcription product of a gene (e.g., mRNA, tRNA, rRNA, antisense RNA, ribozyme, structural RNA, or any other type of RNA) or a protein produced by translation of mRNA. Gene products also include RNAs modified by processes such as capping, polyadenylation, methylation, and editing, as well as proteins modified by, for example, methylation, acetylation, phosphorylation, ubiquitination, ADP-ribosylation, myristylation, and glycosylation.

[0105] The "GLA gene" encodes α-galactosidase, an enzyme that breaks down globotriaosylceramide. Genetic mutations in the GLA gene result in defective enzymatic function of α-galactosidase. The GLA gene is located at Xq22.1, which is position 22.1 on the long arm (q) of the X chromosome. The GLA gene is also sometimes referred to as AGAL_HUMAN, agalsidase alpha, alpha-D-galactosidase A, alpha-D-galactosidase galactohydrolase, alpha-galactosidase, alpha-galactosidase A, ceramide trihexosidase, GALA, galactosidase alpha, or melibiase.

[0106] "Modulation" of gene expression refers to a change in the activity of a gene. Modulation of expression can include, but is not limited to, gene activation, gene optimization, and gene suppression. Genome editing (e.g., truncation, modification, inactivation, random mutation) can be used to regulate expression. Gene inactivation refers to any reduction in gene expression compared to cells that do not contain the ZFP, TALE, or CRISPR / Cas system described herein. Thus, gene inactivation can be partial or complete.

[0107] A "region of interest" is any region of cellular chromatin, such as, for example, a gene or a non-coding sequence within or adjacent to a gene, in which it is desirable to bind an exogenous molecule. Binding may be for the purpose of targeted DNA cleavage and / or targeted recombination. A region of interest may be present, for example, in a chromosome, episome, organelle genome (e.g., mitochondria, chloroplast), or infectious viral genome. A region of interest may be within the coding region of a gene, within a transcribed non-coding region such as, for example, a leader sequence, trailer sequence, or intron, or within a non-transcribed region either upstream or downstream of a coding region. A region of interest may be as small as a single nucleotide pair or up to 2,000 nucleotide pairs in length, or any integer number of nucleotide pairs.

[0108] "Eukaryotic" cells include, but are not limited to, fungal cells (such as yeast), plant cells, animal cells, mammalian cells, and human cells (e.g., liver cells, muscle cells, RBCs, T cells, etc.), including stem cells (pluripotent and multipotent).

[0109] "Red blood cells" (RBCs) or erythrocytes are terminally differentiated cells derived from hematopoietic stem cells. They lack nucleases and most organelles. RBCs contain hemoglobin, which transports oxygen from the lungs to peripheral tissues. In fact, 33% of an individual RBC is hemoglobin. They also transport CO2 produced by cells during metabolism out of tissues and back to the lungs for release during exhalation. RBCs are produced in the bone marrow in response to hypoxic blood conditions, involving the release of erythropoietin (EPO) by the kidneys. EPO increases the number of proerythroblasts and shortens the time required for full RBC maturation. After approximately 120 days, RBCs lack nuclei or any other regenerative capacity, and are therefore removed from the circulation either by the phagocytic activity of macrophages in the liver, spleen, and lymph nodes (approximately 90%) or by hemolysis in the plasma (approximately 10%). After macrophage phagocytosis, the chemical components of the RBCs are degraded within the macrophage vacuoles due to the action of lysosomal enzymes. The RBCs may be derived in vitro or in vivo from the genetically modified stem cells or RBC progenitor cells described herein.

[0110] "Secretory tissue" refers to animal tissue that secretes products from individual cells into some type of lumen, typically of epithelial origin. Examples of secretory tissues located in the digestive tract include cells lining the intestine, pancreas, and gallbladder. Other secretory tissues include tissues associated with the liver, eye, and mucous membranes, such as salivary glands, mammary glands, prostate, pituitary gland, and other elements of the endocrine system. Additionally, secretory tissues include individual cells of any tissue type capable of secretion.

[0111] The terms "operably linked" and "operably linked" (or "operably linked") are used interchangeably in reference to the juxtaposition of two or more components (such as sequence elements) that allow for the normal function of both components and the potential for at least one component to mediate the function of at least one other component. By way of example, a transcription control sequence, such as a promoter, is operably linked to a coding sequence if it controls the level of transcription of the coding sequence depending on the presence or absence of one or more transcription factors. A transcription control sequence is generally operably linked to a coding sequence in cis, but need not be directly adjacent to it. For example, an enhancer is a transcription control sequence that is operably linked to a coding sequence, even if they are not contiguous.

[0112] The term "operably linked," with respect to a fusion polypeptide, can refer to the fact that each component that is linked to the other component performs the same function as it would when not so linked. For example, with respect to a fusion polypeptide in which a ZFP, TALE, or Cas DNA-binding domain is fused to an activation domain, the ZFP or TALE DNA-binding domain and the activation domain are operably linked if the ZFP or TALE DNA-binding domain portion in the fusion polypeptide is capable of binding to its target site and / or its binding site, while the activation domain is capable of upregulating gene expression. With respect to a fusion polypeptide in which a ZFP or TALE DNA-binding domain is fused to a cleavage domain, the ZFP or TALE DNA-binding domain and the cleavage domain are operably linked if the ZFP or TALE DNA-binding domain portion in the fusion polypeptide is capable of binding to its target site and / or its binding site, while the cleavage domain is capable of cleaving DNA near the target site.

[0113] A "functional fragment" of a protein, polypeptide, or nucleic acid is a protein, polypeptide, or nucleic acid whose sequence is not identical to the full-length protein, polypeptide, or nucleic acid, but which still retains the same function as the full-length protein, polypeptide, or nucleic acid. A functional fragment can have more, fewer, or the same number of residues as the corresponding native molecule, and / or may contain one or more amino acid or nucleotide substitutions. Methods for determining the function of a nucleic acid (e.g., coding function, ability to hybridize with another nucleic acid) are well known in the art. Similarly, methods for determining protein function are well known. For example, the DNA-binding function of a polypeptide can be determined, for example, by filter binding, electrophoretic mobility shift, or immunoprecipitation assays. DNA cleavage can be assayed by gel electrophoresis. See Ausubel et al., supra. The ability of a protein to interact with another protein can be determined, for example, by co-immunoprecipitation, two-hybrid assays, or both genetic and biochemical complementation. See, e.g., Fields et al. (1989) Nature 340:245-246; U.S. Patent No. 5,585,245 and International Patent Publication No. WO 98 / 44350.

[0114] A "vector" is capable of introducing a gene sequence into a target cell. Generally, the terms "vector construct," "expression vector," "gene transfer vector," and "expression construct" refer to any nucleic acid construct that can induce expression of a gene of interest and introduce a gene sequence into a target cell. Thus, the term includes cloning and expression vehicles as well as integrating vectors.

[0115] A "reporter gene" or "reporter sequence" refers to any sequence that results in a protein product that is preferably easily measured, although not necessarily in a routine assay. Suitable reporter genes include, but are not limited to, sequences encoding proteins that mediate antibiotic resistance (e.g., ampicillin resistance, neomycin resistance, G418 resistance, puromycin resistance), sequences encoding colored, fluorescent, or luminescent proteins (e.g., green fluorescent protein, enhanced green fluorescent protein, red fluorescent protein, luciferase), and proteins that mediate enhanced cell growth and / or gene amplification (e.g., dihydrofolate reductase). Epitope tags include, for example, one or more copies of FLAG, His, myc, Tap, HA, or any detectable amino acid sequence. An "expression tag" includes a sequence encoding a reporter that may be operably linked to a desired gene sequence to monitor expression of the gene of interest.

[0116] The terms "subject" and "patient" are used interchangeably and refer to mammals, e.g., human patients and non-human primates, as well as experimental animals, e.g., rabbits, dogs, cats, rats, mice, and other animals. Thus, the term "subject" or "patient," as used herein, refers to a mammalian patient or subject to which the modified cells described herein and / or proteins produced by the modified cells described herein can be administered. Subjects of the present disclosure include subjects with LSDs.

[0117] Disclosed herein are methods and compositions for treating and / or preventing Fabry disease. The disclosure describes methods for the insertion of a transgene sequence into a suitable target cell (e.g., a cell from a subject with Fabry disease), where the transgene encodes at least one protein (e.g., at least one α-Gal A protein) that treats the disease. Methods may be in vivo (delivery of the transgene sequence to the cells of a living subject) or ex vivo (delivery of modified cells to a living subject). The disclosure also describes methods for transfecting and / or transducing suitable target cells using expression systems, such that the α-Gal A-encoding transgene expresses a protein that treats the disease (e.g., alleviates one or more symptoms associated with the disease). The α-Gal A protein may be excreted (secreted) from the target cell so that it can affect or be taken up by other cells that do not carry the transgene (cross-collection). The present disclosure also provides methods for the generation of cells (e.g., mature or undifferentiated cells) that produce high levels of α-Gal A, whereby introduction of a population of these modified cells into a patient will supply the needed protein for treating a disease or condition. Additionally, methods are provided for the generation of cells (e.g., mature or undifferentiated cells) that produce highly active (therapeutic) α-Gal A, whereby introduction or generation of a population of these modified cells in a patient will provide the needed protein activity for treating Fabry disease (e.g., reducing or eliminating one or more symptoms). Highly active α-Gal A produced as described herein can also be isolated from the cells as described herein and administered to a patient in need thereof using standard enzyme replacement procedures known to those of skill in the art.

[0118] Described herein are methods and compositions for expressing at least one α-galactosidase A (α-Gal A) protein. The compositions and methods may be for in vitro, in vivo, or ex vivo use and include administering to a cell a GLA transgene (e.g., a cDNA having a wild-type or codon-optimized GLA sequence) encoding at least one α-Gal A protein such that the α-Gal A protein is expressed in the cell. In certain embodiments, the cell is in a subject with Fabry disease. In any of the methods described herein, the transgene can be administered to the liver of the subject. Optionally, the method further includes administering one or more nucleases that cleave the albumin gene in the subject's liver cells such that the transgene is integrated into and expressed from the endogenous albumin gene. In any of the methods described herein, the α-Gal A protein expressed from the transgene can reduce the amount of glycosphingolipids in the subject by at least about two-fold compared to untreated subjects or subjects treated with a formulation buffer or other carrier. The GLA transgene may further comprise additional elements, including, for example, a signal peptide and / or one or more regulatory elements. In certain embodiments, the GLA transgene (e.g., a cDNA construct) further comprises a wild-type or engineered WPRE sequence, such as a mutant WPRE sequence, including the WPRE mut6 mutation described in Zanta-Boussif et al. (2009) Gene Therapy 16:605-619 and U.S. Patent No. 10,179,918. In some embodiments, the mut6 mutation is made in the J04514 WPRE element, while in other embodiments, it is made in the J02442.1 WPRE (Ong et al. (2017) doi.org / 10.1101 / 126904). In certain embodiments, the expressed GLA construct comprises the construct (variant #21) shown in FIG. 1B.Expression constructs containing a WPRE as described herein result in improved transgene expression and activity (e.g., 1-fold, 2-fold, 3-fold, 4-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold or more increased expression or activity) compared to expression constructs that do not contain a WPRE sequence. In certain embodiments, the expression constructs are those shown in Table 1.

[0119] In one aspect, the present disclosure describes a method for expressing a transgene encoding one or more modified GLA transgenes in the cells of a subject. The transgene may be inserted into the genome of a suitable target cell (e.g., a blood cell, a liver cell, a brain cell, a stem cell, a progenitor cell, etc.) such that the α-Gal A product encoded by the modified transgene is stably integrated into the genome of the cell (also referred to as the "IVPRP" approach), or the transgene may be maintained extrachromosomally in the cell (also referred to as the "cDNA" approach). In one embodiment, a modified GLA transgene is introduced (stable or extrachromosomal) into cells of a cell line for in vitro production of a replacement protein, which (optionally purified and / or isolated) may then be administered to a subject with Fabry disease to treat the subject (e.g., by reducing and / or eliminating one or more symptoms associated with Fabry disease). In certain embodiments, the α-Gal A product encoded by the corrective transgene increases α-Gal A activity in the subject's tissue by any amount compared to an untreated subject, for example, about 2 to about greater than 2000-fold (or any value in between), including, but not limited to, 2 to 100-fold (or any value therebetween, including 10, 20, 30, 40, 50, 60, 70, 80, 90, 100-fold), 100 to 500-fold (or any value therebetween), 500 to 1000-fold (or any value therebetween), or 1000 to 2000-fold or more (or any value therebetween).

[0120] In another aspect, described herein are ex vivo or in vivo methods of treating a subject with Fabry disease (e.g., by reducing and / or eliminating one or more symptoms associated with Fabry disease), the methods comprising inserting a GLA transgene into a cell described herein (cDNA and / or IVPRP approaches) such that a protein is produced in the subject with Fabry disease. In certain embodiments, the GLA transgene is part of a construct shown in Table 1. In certain embodiments, isolated cells containing the GLA transgene can be used to treat a patient in need thereof, for example, by administering the cells to a subject with Fabry disease. In other embodiments, a corrected GLA transgene is inserted into a target tissue within the body such that the replacement protein is produced in vivo. In some embodiments, the corrected transgene is inserted into the genome of cells of the target tissue, while in other preferred embodiments, the corrected transgene is inserted into cells of the target tissue and maintained extrachromosomally in the cells. In any of the methods described herein, the expressed α-Gal A protein may be exported from the cell (e.g., by export into the blood) to act on or be taken up by secondary targets, including other cells in other tissues lacking the GLA transgene (cross-collection). In some cases, the primary and / or secondary target tissue is the liver. In other cases, the primary and / or secondary target tissue is the brain. In other cases, the primary and / or secondary target is the blood (e.g., the vasculature). In other cases, the primary and / or secondary target is skeletal muscle.

[0121] In certain embodiments, the methods and compositions described herein are used to reduce the amount of glycosphingolipids, including globotriaosylceramide (also known as GL-3 and Gb3) and globotriaosylsphingosine (lyso-Gb3), galabiocylceramide, deposited in the tissues of a subject with Fabry disease. In certain embodiments, the α-Gal A product encoded by the corrective transgene reduces glycosphingolipids in the tissues of the subject by any amount, for example, from about 2-fold to more than about 100-fold (or any value therebetween), compared to an untreated subject, including, but not limited to, 2- to 100-fold (or any value therebetween, including 10, 20, 30, 40, 50, 60, 70, 80, 90, 100-fold). In certain embodiments, the α-Gal A product encoded by the modified transgene reduces glycosphingolipids in the subject's tissues by any amount, e.g., at least about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or about 100%, compared to an untreated subject.

[0122] In any of the methods described herein, the modified GLA transgene comprises the wild-type sequence of a functional GLA gene; however, in other embodiments, the sequence of the modified GLA transgene is modified in some manner to obtain improved biological activity (e.g., optimized codons to increase biological activity and / or modified transcriptional and translational control sequences to improve gene expression). In some embodiments, the GLA gene is modified to improve expression characteristics. Such modifications can include, but are not limited to, the insertion of a translation start site (e.g., methionine), the addition of an optimized Kozak sequence, the insertion of a signal peptide, and / or codon optimization. In some embodiments, the signal peptide can be selected from an albumin signal peptide, an F.IX signal peptide, an IDS signal peptide, and / or an α-Gal A signal peptide.

[0123] In certain embodiments, the donor is a cDNA donor. The cDNA donor generally includes an enhancer sequence, a promoter sequence, an intron sequence, a signal peptide, a GLA coding sequence, a polyadenylation signal, and, optionally, a wild-type or mutant WPRE sequence. Non-limiting examples of cDNA donors are shown schematically in Figures 1A and 1B.

[0124] Any promoter, enhancer, intron, signal peptide, GLA coding sequence or polyA sequence, and any WPRE sequence can be used in a cDNA construct. In some embodiments, the enhancer and / or promoter is liver-specific, for example, consisting of the human ApoE enhancer and human alpha 1 antitrypsin (hAAT) promoter (Miao CH et al. (2000) Mol. Ther. 1(6): 522-532 (200)). In some embodiments, the liver-specific promoter comprises one or more ApoE enhancer sequences (e.g., one, two, three, and / or four; see Okuyama et al. (1996) Hum Gen Ther 7(5):637-45). In some embodiments, the promoter is linked to an intron. In some embodiments, the intron is an HBB-IGG chimeric intron containing the 5' donor site of the first intron of the human β-globin gene and the branched and 3' acceptor sites of an intron of an immunoglobulin gene heavy chain variable region. In some embodiments, the ApoE / hAAT promoter is specific and highly active in hepatocytes, the intended target tissue, but is inactive in non-hepatic cells and tissue types, thereby reducing or preventing expression and activity in non-target tissues. In certain embodiments, the signal peptide comprises a GLA signal peptide, and the polyadenylation signal comprises an SPA51 or bGH polyA sequence. The optional WPRE sequence may be any wild-type or mutant WPRE sequence. See, e.g., U.S. Patent No. 10,179,918. In certain embodiments, the WPRE sequence comprises a mutant WPRE, such as a mut6 WPRE sequence.

[0125] The cDNA expression vectors described herein can be delivered by any suitable vector, including viral vectors such as AAV of any serotype (eg, AAV2, AAV6, or AAV2 / 6).

[0126] In a specific embodiment, the expression sequence (i.e., expression vector or expression construct) comprises the elements and sequences of variant #21 depicted in Figure 1B and set forth in Table 1 below. [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4] [Table 1-5] [Table 1-6] [Table 1-7] [Table 1-8]

[0127] The expression constructs in Table 1 containing the WPRE sequence can be readily produced on a clinical scale and have been shown to exhibit, for example, at least about 3-fold, about 4-fold, about 5-fold, about 6-fold, about 7-fold, about 8-fold, about 9-fold, about 10-fold, about 11-fold, about 12-fold, about 13-fold, about 14-fold, about 15-fold, about 16-fold, about 17-fold, about 18-fold, about 19-fold, or about 20-fold improved GLA activity compared to expression constructs that do not contain the WPRE sequence.

[0128] In another aspect, described herein are nuclease (e.g., ZFN, ZFN pair, TALEN, TALEN pair, and / or CRISPR / Cas system) expression vectors comprising a polynucleotide encoding one or more nucleases described herein operably linked to a promoter. In one embodiment, the expression vector is a viral vector. In another aspect, described herein are GLA expression vectors comprising a polynucleotide encoding an α-Gal A described herein operably linked to a promoter. In one embodiment, the expression vector is a viral vector.

[0129] In another aspect, described herein are host cells comprising one or more nuclease (e.g., ZFN, ZFN pair, TALEN, TALEN pair, and / or CRISPR / Cas system) expression vectors and / or α-Gal A expression vectors described herein. The host cells may be stably transformed or transiently transfected with one or more nuclease expression vectors, or a combination thereof. In some embodiments, the host cells are liver cells.

[0130] In other embodiments, methods are provided for replacing genomic sequences in any target gene with a therapeutic GLA transgene described herein, e.g., using a nuclease (e.g., ZFN, ZFN pair, TALEN, TALEN pair, and / or CRISPR / Cas system) described herein (or one or more vectors encoding such nucleases) and a "donor" sequence or GLA transgene inserted into the gene after targeted cleavage by the nuclease. The GLA sequence may be present in the vector carrying the nuclease (or a component thereof), in a separate vector (e.g., an Ad, AAV, or LV vector or mRNA), or may be introduced into a cell using a different nucleic acid delivery mechanism. Such insertion of the donor nucleotide sequence into a target locus (e.g., a highly expressed gene, a disease-associated gene, or other safe harbor gene, etc.) results in expression of the GLA transgene under the control of the endogenous gene regulatory elements of the target locus (e.g., albumin, globin, etc.). In some embodiments, insertion of the GLA transgene into, for example, a target gene (e.g., albumin) results in expression of the entire α-Gal A protein sequence, lacking any amino acids encoded by the target (e.g., albumin). In other embodiments, the expressed exogenous α-Gal A protein is a fusion protein, containing amino acids encoded by the GLA transgene and by the endogenous locus into which the GLA transgene is inserted (e.g., from the endogenous target locus or from sequences on the transgene that encode sequences at the target locus). The target can be any gene, e.g., a safe harbor gene such as the albumin gene, the AAVS1 gene, or the HPRT gene; the CCR5 gene; or a highly expressed gene such as a globin gene in RBC precursor cells (e.g., beta-globin or gamma-globin). In some cases, the endogenous sequence will be present at the amino (N)-terminal portion of the exogenous α-Gal A protein, while in other cases, the endogenous sequence will be present at the carboxy (C)-terminal portion of the exogenous α-Gal A protein. In other cases, endogenous sequences will be present in both the N- and C-terminal portions of the exogenous α-Gal A protein.In some embodiments, the endogenous sequence encodes a secretory signal peptide that is removed during the process of secretion of the α-Gal A protein from the cell. The endogenous sequence may comprise a full-length wild-type or mutant endogenous sequence, or may comprise a partial endogenous amino acid sequence. In some embodiments, the endogenous gene-transgene fusion is located at the endogenous locus within the cell, while in other embodiments, the endogenous sequence-transgene coding sequence is inserted at another locus within the genome (e.g., a GLA-transgene sequence is inserted into the albumin, HPRT, or CCR5 locus). In some embodiments, the GLA transgene is expressed such that the therapeutic α-Gal A protein product is retained within the cell (e.g., progenitor or mature cells). In other embodiments, the GLA transgene is fused to the extracellular domain of a membrane protein such that, upon expression, the transgene α-Gal A fusion results in surface localization of the therapeutic protein. In some embodiments, the edited cell further comprises a transmembrane protein that transports the cell to a specific tissue type. In one embodiment, the transmembrane protein comprises an antibody, while in other embodiments, the transmembrane protein comprises a receptor. In specific embodiments, the cell is a progenitor (e.g., CD34+ or hematopoietic stem cell) or mature RBC (derived from the genetically modified GAL-producing cells described herein). In some embodiments, the therapeutic α-Gal A protein product encoded by the transgene is excreted from the cell to affect or be taken up by cells lacking the transgene. In specific embodiments, the cell is a liver cell that releases the therapeutic α-Gal A protein into the bloodstream to affect distant tissues (e.g., kidney, spleen, heart, brain, skin, etc.).

[0131] In one embodiment, the GLA transgene is expressed from the albumin promoter after insertion into the albumin locus. The biologic encoded by the GLA transgene may then be released into the bloodstream if the transgene is inserted into hepatocytes in vivo. In some embodiments, the GLA transgene in a viral vector is delivered to the liver in vivo by intravenous administration. In some embodiments, the donor GLA transgene contains a Kozak consensus sequence preceding the α-Gal A coding sequence so that the expression product lacks the albumin signal peptide (Kozak (1987) Nucl Acid Res 15(20):8125-48). In some embodiments, the donor α-Gal A transgene contains an alternative signal peptide, such as a signal peptide from the albumin, IDS, or F9 gene, instead of the native GLA signal sequence.

[0132] In yet another aspect, provided herein are methods for site-specific integration of a nucleic acid sequence into an endogenous chromosomal locus (e.g., a disease-associated, highly expressed locus, e.g., an albumin locus in liver cells or a globin locus in RBC progenitor cells), e.g., into a chromosome of a non-human embryo. In certain embodiments, the method includes (a) injecting into a non-human embryo (i) at least one DNA vector comprising upstream and downstream sequences flanking an α-Gal A encoding nucleic acid sequence to be integrated, and (ii) at least one polynucleotide molecule encoding at least one nuclease (zinc finger, ZFN pair, TALE nuclease, TALEN pair, or CRISPR / Cas system) that recognizes a site of integration in the target locus; and (b) culturing the embryo to allow expression of the nuclease (ZFN, TALEN, and / or CRISPR / Cas system), wherein a double-strand break introduced by the nuclease at the site of integration is repaired by homologous recombination with the DNA vector, so as to integrate the nucleic acid sequence into the chromosome. In some embodiments, the polynucleotide encoding the nuclease is RNA.

[0133] nuclease Any nuclease can be used to practice aspects of the methods described herein, including, but not limited to, a system comprising at least one ZFN, TALEN, homing endonuclease, and CRISPR / Cas useful for in vivo cleavage of a donor molecule carrying a transgene and / or Ttago guide RNA, as well as a nuclease for cleaving the genome of a cell so that the transgene is integrated into the genome in a targeted manner. Thus, described herein are compositions comprising one or more nucleases that cleave a selected gene, such that cleavage results in genomic modification of the gene (e.g., insertion and / or deletion of the cleaved gene). In certain embodiments, one or more nucleases are naturally occurring. In other embodiments, one or more nucleases are non-naturally occurring, i.e., engineered in a DNA-binding molecule (also referred to as a DNA-binding domain) and / or cleavage domain. For example, the DNA-binding domain of a naturally occurring nuclease may be engineered to bind to a selected target site (e.g., a ZFP, TALE, and / or CRISPR / Cas sgRNA engineered to bind to a selected target site). In other embodiments, the nuclease comprises heterologous DNA binding and cleavage domains (e.g., zinc finger nucleases; TAL-effector domain DNA binding proteins; meganuclease DNA binding domains with heterologous cleavage domains). In other embodiments, the nuclease comprises a system such as the Ttago system of CRISPR / Cas.

[0134] DNA-binding domain In certain embodiments, the compositions and methods described herein utilize meganuclease (homing endonuclease) DNA-binding domains to bind to donor molecules and / or to target regions of a cell's genome. Naturally occurring meganucleases recognize cleavage sites of 15-40 base pairs and are generally classified into four families: the LAGLIDADG family ("LAGLIDADG" disclosed as SEQ ID NO: 10), the GIY-YIG family, the His-Cyst box family, and the HNH family. Exemplary homing endonucleases include I-SceI, I-CeuI, PI-PspI, PI-Sce, I-SceIV, I-CsmI, I-PanI, I-SceII, I-PpoI, I-SceIII, I-CreI, I-TevI, I-TevII, and I-TevIII. Their recognition sequences are known. U.S. Patent No. 5,420,032; U.S. Patent No. 6,833,252; Belfort et al. (1997) Nucleic Acids Res. 25:3379-3388; Dujon et al. (1989) Gene 82:115-118; Perler et al. (1994) Nucleic Acids Res. 22, See also Jasin (1996) Trends Genet. 12:224-228; Gimble et al. (1996) J. Mol. Biol. 263:163-180; Argast et al. (1998) J. Mol. Biol. 280:345-353 and the New England Biolabs catalog. Furthermore, the DNA binding specificity of homing endonucleases and meganucleases can be engineered to bind to non-natural target sites.See, e.g., Chevalier et al. (2002) Molec. Cell 10:895-905; Epinat et al. (2003) Nucleic Acids Res. 31:2952-2962; Ashworth et al. (2006) Nature 441:656-659; Paques et al. (2007) Current Gene Therapy 7:49-66; U.S. Patent No. 8,021,867. The DNA-binding domain of homing endonucleases and meganucleases may be modified relative to the entire nuclease (i.e., so that the nuclease contains a homologous cleavage domain) or may be fused to a heterologous cleavage domain.

[0135] In other embodiments, the DNA-binding domain of one or more nucleases used in the methods and compositions described herein comprises a naturally occurring or engineered (non-naturally occurring) TAL effector DNA-binding domain. See, e.g., U.S. Patent No. 8,586,526, incorporated herein by reference in its entirety. Plant pathogens of the genus Xanthomonas are known to cause many diseases in important crop plants. Xanthomonas pathogenicity relies on a conserved type III secretion (T3S) system that injects over 25 different effector proteins into plant cells. Among these injected proteins are transcription activator-like (TAL) effectors, which mimic plant transcription activators and manipulate the plant transcriptome (see Kay et al. (2007) Science 318:648-651). These proteins comprise a DNA-binding domain and a transcription activation domain. One of the best-characterized TAL effectors is AvrBs3 from Xanthomonas campestgris pv. Vesicatoria (see Bonas et al. (1989) Mol Gen Genet 218: 127-136 and WO2010079430). TAL effectors contain a concentrated domain of tandem repeats, each containing approximately 34 amino acids that are important for the DNA-binding specificity of these proteins. In addition, they contain a nuclear localization sequence and an acidic transcriptional activation domain (for review, see Schornack S, et al. (2006) J Plant Physiol 163(3):256-272). Furthermore, in the plant pathogen Ralstonia solanacearum, two genes designated brg11 and hpx17 have been found to be homologous to the AvrBs3 family of Xanthomonas in the R. solanacearum biovar 1 strain GMI1000 and biovar 4 strain RS1000 (see Heuer et al (2007) Appl and Envir Micro 73(13):4379-4384).These genes are 98.9% identical to each other in nucleotide sequence, but differ by a 1,575 bp deletion in the repeat domain of hpx17. However, both gene products share less than 40% sequence identity with Xanthomonas AvrBs3 family proteins. See, e.g., U.S. Patent No. 8,586,526, incorporated herein by reference in its entirety.

[0136] The specificity of these TAL effectors depends on the sequence found in the tandem repeat. The repeat sequence contains approximately 102 bp, and the repeats are generally 91-100% homologous to each other (Bonas et al., ibid.). Polymorphisms in the repeat are usually located at positions 12 and 13, and there appears to be a one-to-one correspondence between the identity of the hypervariable dinucleotides (RVDs) at positions 12 and 13 and the identity of consecutive nucleotides in the target sequence of the TAL-effector (see Moscou and Bogdanove, (2009) Science 326:1501 and Boch et al. (2009) Science 326:1509-1512). Experimentally, the natural codes for DNA recognition of these TAL-effectors were determined such that the HD sequence at positions 12 and 13 results in binding to cytosine (C), NG binds to T, NI binds to A, C, G, or T, NN binds to A or G, and ING binds to T. These DNA-binding repeats were assembled into proteins with new combinations and repeat numbers to generate artificial transcription factors that can interact with new sequences and activate the expression of non-endogenous reporter genes in plant cells (Boch et al., ibid.). Engineered TAL proteins were linked to a FokI cleavage half-domain to obtain TAL-effector domain-nuclease fusions (TALENs) that exhibit activity in yeast reporter assays (plasmid-based targets). See, e.g., U.S. Pat. No. 8,586,526; Christian et al. (2010) Genetics epub 10.1534 / genetics.110.120717).

[0137] In certain embodiments, the DNA binding domain of one or more nucleases used for in vivo cleavage and / or targeted cleavage of a cell's genome comprises a zinc finger protein. Preferably, the zinc finger protein is non-naturally occurring in that it has been engineered to bind to a selected target site. See, for example, Beerli et al. (2002) Nature Biotechnol. 20:135-141; Pabo et al. (2001) Ann. Rev. Biochem. 70:313-340; Isalan et al. (2001) Nature Biotechnol. 19:656-660; Segal ... et al.(2001) Curr. Opin. Biotechnol.12:632-637;Choo et al.(2000) Curr. Opin. Struct. Biol. 10:411-416; U.S. Patent Nos. 6,453,242; 6,534,261; 6,599,692; 6,503,717; 6,689,558; 7,030,215; 6,794,136; 7,067,317; 7,262,054; 7,070,934; 7,361,635; 7,253,273; 7,888,121; 7,972,854; and U.S. Patent Publication No. 20050267061.

[0138] Engineered zinc finger binding domains may have novel binding specificities compared to naturally occurring zinc finger proteins. Engineering methods include, but are not limited to, rational design and various types of selection. Rational design, for example, involves using a database containing triplet (or quadruplet) nucleotide sequences and individual zinc finger amino acid sequences, where each triplet or quadruplet nucleotide sequence is associated with one or more amino acid sequences of zinc fingers that bind to that particular triplet or quadruplet sequence. See, for example, commonly owned U.S. Patent Nos. 6,453,242 and 6,534,261, which are incorporated herein by reference in their entireties.

[0139] Exemplary selection methods, including phage display and two-hybrid systems, are disclosed in U.S. Patent Nos. 5,789,538; 5,925,523; 6,007,988; 6,013,453; 6,410,248; 6,140,466; 6,200,759; and 6,242,568; as well as WO 98 / 37186; WO 98 / 53057; WO 00 / 27878; and WO 01 / 88197. Additionally, enhanced binding specificity for zinc finger binding domains is described, for example, in commonly owned WO 02 / 077227.

[0140] Furthermore, as disclosed in these and other references, zinc finger domains and / or multi-fingered zinc finger proteins may be linked together using any suitable linker sequence, including, for example, linkers of five or more amino acids in length. See also U.S. Patent Nos. 8,772,453; 6,479,626; 6,903,185; and 7,153,949 for exemplary linker sequences. The proteins described herein may include any combination of suitable linkers between the individual zinc fingers of the protein.

[0141] Methods for target site selection; ZFP selection, and design and construction of fusion proteins (and polynucleotides encoding same) are known to those of skill in the art and are described in U.S. Patent Nos. 6,140,081; 5,789,538; 6,453,242; 6,534,261; 5,925,523; 6,007,988; 6,013,453; 6, 200,759; WO95 / 19431; WO96 / 06166; WO98 / 53057; WO98 / 54311; WO00 / 27878; WO01 / 60970; WO01 / 88197; WO02 / 099084; WO98 / 53058; WO98 / 53059; WO98 / 53060; WO02 / 016536 and WO03 / 016496.

[0142] Furthermore, as disclosed in these and other references, zinc finger domains and / or multi-fingered zinc finger proteins may be linked together using any suitable linker sequence, including, for example, linkers of 5 amino acids or more in length. See also U.S. Patent Nos. 6,479,626; 6,903,185; and 7,153,949 for exemplary linker sequences of 6 amino acids or more in length. The proteins described herein may include any combination of suitable linkers between the individual zinc fingers of the protein.

[0143] In certain embodiments, the DNA-binding domain is part of a CRISPR / Cas nuclease system, e.g., including a single guide RNA (sgRNA). See, e.g., U.S. Patent Nos. 8,697,359 and 9,873,894. The CRISPR (clustered regularly interspaced short palindromic repeats) locus, which encodes the RNA components of the system, and the Cas (CRISPR-associated) locus, which encodes proteins (Jansen et al., 2002. Mol. Microbiol. 43: 1565-1575; Makarova et al., 2002. Nucleic Acids Res. 30: 482-496; Makarova et al., 2006. Biol. Direct 1: 7; Haft et al., 2005. PLoS Comput. Biol. 1: e60) constitute the genetic sequence of the CRISPR / Cas nuclease system. CRISPR loci in microbial hosts contain a combination of CRISPR-associated (Cas) genes as well as non-coding RNA elements that can program the specificity of CRISPR-mediated nucleic acid cleavage.

[0144] Type II CRISPR, one of the best-characterized systems, creates a double-stranded break in target DNA in four sequential steps. First, two non-coding RNAs, the pre-crRNA and tracrRNA, are transcribed from the CRISPR locus. Second, tracrRNA hybridizes to the repeat region of the pre-crRNA and mediates processing of the pre-crRNA into mature crRNAs containing individual spacer sequences. Third, the mature crRNA:tracrRNA complex guides Cas9 to the target DNA through Watson-Crick base pairing between the crRNA spacer and the target DNA protospacer adjacent to the protospacer adjacent motif (PAM), an additional requirement for target recognition. Finally, Cas9 mediates cleavage of the target DNA, creating a double-stranded break within the protospacer. The activity of the CRISPR / Cas system involves three steps: (i) insertion of foreign DNA sequences into the CRISPR array to prevent future attacks in a process called "acquisition," (ii) expression of associated proteins and expression and processing of the array, followed by (iii) RNA-mediated interference with the foreign nucleic acid. Thus, in bacterial cells, several so-called "Cas" proteins are involved in the native function of the CRISPR / Cas system and play a role in functions such as insertion of foreign DNA.

[0145] In certain embodiments, a Cas protein may be a "functional derivative" of a naturally occurring Cas protein. A "functional derivative" of a native sequence polypeptide is a compound that shares qualitative biological properties with the native sequence polypeptide. "Functional derivatives" include, but are not limited to, fragments of native sequences and derivatives of native sequence polypeptides and fragments thereof, provided that they share a biological activity with the corresponding native sequence polypeptide. The biological activity contemplated herein is the ability of a functional derivative to hydrolyze a DNA substrate into fragments. The term "derivative" encompasses amino acid sequence variants of a polypeptide, covalent modifications thereof, and fusions. Suitable derivatives of a Cas polypeptide or fragments thereof include, but are not limited to, mutants, fusions, covalent modifications, or fragments of a Cas protein. Cas proteins, including Cas proteins or fragments thereof, and derivatives or fragments of a Cas protein, may be obtained from cells or synthesized chemically or by a combination of these two procedures. The cells may be cells that naturally produce Cas proteins, or cells that naturally produce Cas proteins and have been genetically engineered to produce endogenous Cas proteins at higher expression levels, or to produce Cas proteins from exogenously introduced nucleic acids encoding the same or different Cas proteins as the endogenous Cas proteins. In some cases, the cells do not naturally produce Cas proteins but are genetically engineered to produce Cas proteins. Further non-limiting examples of RNA-guided nucleases that may be used in addition to and / or instead of Cas proteins include Class 2 CRISPR proteins, such as Cpf1. See, e.g., Zetsche et al. (2015) Cell 163:1-13.

[0146] The CRISPR-Cpf1 system identified in Francisella species is a class 2 CRISPR-Cas system that mediates robust DNA interference in human cells. Although functionally conserved, Cpf1 and Cas9 differ in many aspects, including guide RNA and substrate specificity (see Fagerlund et al., (2015) Genom Bio 16:251). A key difference between Cas9 and Cpf1 proteins is that Cpf1 does not utilize a tracrRNA; only the crRNA is required. The FnCpf1 crRNA is 42–44 nucleotides long (19-nucleotide repeats and a 23–25-nucleotide spacer) and contains a single stem-loop that tolerates sequence changes to maintain secondary structure. Furthermore, the Cpf1 crRNA is significantly shorter than the approximately 100-nucleotide engineered sgRNA required by Cas9, and the PAM requirement for FnCpf1 is a 5'-TTN-3' and 5'-CTA-3' sequence on the displaced strand. Both Cas9 and Cpf1 create double-stranded breaks in target DNA; however, Cas9 uses the RuvC and HNH-like domains to create a blunt-end cut within the seed sequence of the guide RNA, whereas Cpf1 uses the RuvC-like domain to create a staggered cut outside the seed. Because Cpf1 creates a staggered cut away from the critical seed region, NHEJ does not destroy the target site, thereby ensuring that Cpf1 can continue to cut at the same site until the desired HDR recombination event occurs. Therefore, in the methods and compositions described herein, it is understood that the term "Cas" includes both Cas9 and Cfp1 proteins. Thus, as used herein, a "CRISPR / Cas system" refers to both CRISPR / Cas and / or CRISPR / Cfp1 systems, including both nuclease and / or transcription factor systems.

[0147] In some embodiments, the DNA-binding domain is part of the TtAgo system (see Swarts et al., ibid.; Sheng et al., ibid.). In eukaryotes, gene silencing involves the Argonaute (Ago) family of proteins. In this example, Ago binds small (19-31 nt) RNAs. This protein-RNA silencing complex recognizes the target RNA through Watson-Crick base pairing between the small RNA and the target and endonucleolytically cleaves the target RNA (Vogel (2014) Science 344:972-973). In contrast, prokaryotic Ago proteins bind small single-stranded DNA fragments and may function to detect and remove foreign (often viral) DNA (Yuan et al., (2005) Mol. Cell 19, 405; Olovnikov, et al. (2013) Mol. Cell 51, 594; Swarts (Et al., ibid.) Exemplary prokaryotic Ago proteins include those from Aquifex aeolicus, Rhodobacter sphaeroides, and Thermus thermophilus.

[0148] One of the best-characterized prokaryotic Ago proteins is from T. thermophilus (TtAgo; Swarts et al., ibid.). TtAgo binds either 15 nt or 13–25 nt single-stranded DNA fragments bearing a 5′ phosphate group. This TtAgo-bound “guide DNA” serves to guide the protein-DNA complex to bind to complementary Watson-Crick DNA sequences in a third molecule of DNA. Once the sequence information in these guide DNAs allows identification of the target DNA, the TtAgo-guide DNA complex cleaves the target DNA. Such a mechanism is also supported by the structure of the TtAgo-guide DNA complex while bound to the target DNA (G. Sheng et al., ibid.). Ago from Rhodobacter sphaeroides (RsAgo) has similar properties (Olivnikov et al., ibid.).

[0149] Exogenous guide DNA of any DNA sequence can be loaded into the TtAgo protein (Swarts et al., ibid.). Because the specificity of TtAgo cleavage is guided by the guide DNA, a TtAgo·DNA complex formed with a researcher-defined exogenous guide DNA will therefore direct TtAgo target DNA cleavage to the researcher-defined complementary target DNA. In this way, targeted double-strand breaks can be created in DNA. The use of the TtAgo·guide DNA system (or orthologous Ago·guide DNA systems from other microorganisms) allows for targeted cleavage of genomic DNA within cells. Such cleavage can be either single-stranded or double-stranded. For cleavage of mammalian genomic DNA, it would be preferable to use TtAgo codon types optimized for expression in mammalian cells. Furthermore, when the TtAgo protein is fused to a cell-penetrating peptide, it would be preferable to treat cells with the TtAgo·DNA complex formed in vitro. Furthermore, it would be preferable to use TtAgo protein types modified by mutagenesis to have improved activity at 37°C. TtAgo·RNA-associated DNA cleavage could be used to affect a number of outcomes, including gene knockout, targeted gene addition, gene correction, and targeted gene ablation, using techniques standard in the art for the use of DNA cleavage.

[0150] Thus, the nuclease contains a DNA binding domain that specifically binds to a target site in any gene into which it is desired to insert the donor (transgene).

[0151] Cleavage domain Any suitable cleavage domain can be operably linked to a DNA binding domain to form a nuclease. For example, a ZFP DNA binding domain can be fused to a nuclease domain to create a ZFN. This is a functional element that can recognize its intended nucleic acid target by its engineered (ZFP) DNA binding domain and cleave DNA near the ZFP binding site through nuclease activity. See, for example, Kim et al. (1996) Proc Natl Acad Sci USA 93(3):1156-1160. The term "ZFN" includes a pair of ZFNs that dimerize to cleave a target gene. More recently, ZFNs have been used for genome modification in various organisms. See, for example, U.S. Patent Nos. 7,888,121; 8,409,861; 8,106,255; and 9,447,434. Similarly, a TALE DNA binding domain can be fused to a nuclease to create a TALEN. See, e.g., U.S. Patent No. 8,586,526. CRISPR / Cas nuclease systems have also been demonstrated that include a single guide RNA (sgRNA) that binds to DNA and binds to a cleavage domain (e.g., a Cas domain) to cause targeted cleavage. See, e.g., U.S. Patent Nos. 8,697,359 and 8,932,814, and U.S. Patent No. 9,873,894.

[0152] As described above, the cleavage domain can be heterologous to the DNA-binding domain, for example, between a zinc finger DNA-binding domain and a nuclease cleavage domain or a TALEN DNA-binding domain and a nuclease cleavage domain; between an sgRNA DNA-binding domain and a nuclease (CRISPR / Cas) cleavage domain; and / or between a meganuclease DNA-binding domain and a nuclease cleavage domain different from the meganuclease DNA-binding domain. Heterologous cleavage domains can be derived from any endonuclease or exonuclease. Exemplary endonucleases from which cleavage domains can be derived include, but are not limited to, restriction endonucleases and homing endonucleases. See, e.g., 2002-2003 Catalogue, New England Biolabs, Beverly, MA; and Belfort et al. (1997) Nucleic Acids Res. 25:3379-3388. Additional enzymes that cleave DNA are known (e.g., S1 nuclease, mung bean nuclease, pancreatic DNase I, micrococcal nuclease, yeast HO endonuclease; see also Linn et al. (eds.) Nucleases, Cold Spring Harbor Laboratory Press, 1993). One or more of these enzymes (or functional fragments thereof) can be used as a source of the cleavage domain and cleavage half-domains.

[0153] Similarly, the cleavage half-domain may be derived from any nuclease or portion thereof that requires dimerization for cleavage activity, as described above. Generally, when a fusion protein contains a cleavage half-domain, two fusion proteins are required for cleavage. Alternatively, a single protein containing two cleavage half-domains may be used. The two cleavage half-domains may be derived from the same endonuclease (or functional fragments thereof), or each cleavage half-domain may be derived from a different endonuclease (or functional fragments thereof). Furthermore, the target sites of the two fusion proteins are preferably positioned relative to each other such that binding of the two fusion proteins to their respective target sites places the cleavage half-domains in a spatial orientation relative to each other that allows the cleavage half-domains to form a functional cleavage domain, e.g., by dimerization. Thus, in certain embodiments, the proximal ends of the target sites are separated by 5-8 nucleotides or 15-18 nucleotides. However, any integral number of nucleotides or nucleotide pairs may be present between the two target sites (e.g., from 2 to 50 or more nucleotide pairs). Generally, the site of cleavage is located between the target sites.

[0154] Restriction endonucleases (restriction enzymes) exist in many species and can bind to DNA in a sequence-specific manner (at a recognition site) and cleave the DNA at or near the site of binding. Certain restriction enzymes (e.g., type IIS) cleave DNA at a site removed from the recognition site and have separable binding and cleavage domains. For example, the type IIS enzyme FokI catalyzes double-stranded cleavage of DNA at the 9th nucleotide from the recognition site on one strand and the 13th nucleotide from the recognition site on the other strand. See, e.g., U.S. Patent Nos. 5,356,802; 5,436,150 and 5,487,994; and Li et al. (1992) Proc. Natl. Acad. Sci. USA 89:4275-4279; Li et al. (1993) Proc. Natl. Acad. Sci. USA 90:2764-2768; Kim et al. (1994a) Proc. Natl. Acad. Sci. USA 91:883-887; Kim et al. (1994b) J. Biol. Chem. 269:31,978-31,982. Thus, in one embodiment, the fusion protein comprises a cleavage domain (or cleavage half-domain) derived from at least one Type IIS restriction enzyme and one or more zinc finger binding domains, which may or may not be engineered.

[0155] An example of a type IIS restriction enzyme whose cleavage domain is separable from its binding domain is Fok I. This particular enzyme is active as a dimer. Bitinaite et al. (1998) Proc. Natl. Acad. Sci. USA 95: 10,570-10,575. Therefore, for purposes of this disclosure, the portion of the FokI enzyme used in the fusion proteins of this disclosure is considered a cleavage half-domain. Thus, for targeted double-strand cleavage and / or targeted replacement of cellular sequences using zinc finger-FokI fusions, two fusion proteins, each containing a FokI cleavage half-domain, can be used to reconstitute a catalytically active cleavage domain. Alternatively, a single polypeptide molecule containing a zinc finger binding domain and two FokI cleavage half-domains can be used. Parameters for targeted cleavage and targeted sequence modification using zinc finger-FokI fusions are provided elsewhere in this disclosure.

[0156] A cleavage domain or cleavage half-domain can be any portion of a protein that retains cleavage activity or retains the ability to multimerize (e.g., dimerize) to form a functional cleavage domain.

[0157] Exemplary Type IIS restriction enzymes are described in U.S. Patent No. 7,888,121, which is incorporated herein in its entirety. Additional restriction enzymes also contain separable binding and cleavage domains and are contemplated by the present disclosure. See, e.g., Roberts et al. (2003) Nucleic Acids Res. 31:418-420.

[0158] In certain embodiments, the cleavage domain comprises one or more engineered cleavage half-domains (also referred to as dimerization domain mutants) that minimize or prevent homodimerization, as described, for example, in U.S. Patent Nos. 8,772,453; 8,623,618; 8,409,861; 8,034,598; 7,914,796; and 7,888,121, the disclosures of which are incorporated herein by reference in their entireties. The amino acid residues at positions 446, 447, 479, 483, 484, 486, 487, 490, 491, 496, 498, 499, 500, 531, 534, 537, and 538 of FokI are all targets for affecting the dimerization of the FokI cleavage half-domain.

[0159] Exemplary engineered cleavage half-domains of FokI that form obligate heterodimers include pairs in which the first cleavage half-domain contains mutations at amino acid residues at positions 490 and 538 of FokI, and the second cleavage half-domain contains mutations at amino acid residue positions 486 and 499.

[0160] Thus, in one embodiment, the mutation at position 490 substitutes Glu(E) with Lys(K), the mutation at position 538 substitutes Iso(I) with Lys(K), the mutation at position 486 substitutes Gln(Q) with Glu(E), and the mutation at position 499 substitutes Iso(I) with Lys(K). Specifically, the engineered cleavage half-domains described herein were generated by mutating positions 490 (E→K) and 538 (I→K) in one cleavage half-domain to generate the engineered cleavage half-domain designated "E490K:I538K" ("KK"), and further by mutating positions 486 (Q→E) and 499 (I→L) in another cleavage half-domain to generate the engineered cleavage half-domain designated "Q486E:I499L" ("EL"). The engineered cleavage half-domains described herein are obligate heterodimer mutants in which aberrant cleavage is minimized or eliminated. U.S. Patent Nos. 7,914,796 and 8,034,598, the disclosures of which are incorporated by reference in their entireties. In certain embodiments, the engineered cleavage half-domains contain mutations at positions 486, 499, and 496 (numbering relative to wild-type FokI), e.g., substitutions of the wild-type Gln (Q) residue at position 486 with a Glu (E) residue, the wild-type Iso (I) residue at position 499 with a Leu (L) residue, and the wild-type Asn (N) residue at position 496 with an Asp (D) or Glu (E) residue (also referred to as "ELD" and "ELE" domains, respectively). In other embodiments, the engineered cleavage half-domain contains mutations at positions 490, 538, and 537 (numbering relative to wild-type FokI), e.g., substitution of the wild-type Glu (E) residue at position 490 with a Lys (K) residue, the wild-type Iso (I) residue at position 538 with a Lys (K) residue, and the wild-type His (H) residue at position 537 with a Lys (K) residue or an Arg (R) residue (also referred to as "KKK" and "KKR" domains, respectively).In other embodiments, the engineered cleavage half-domains comprise mutations at positions 490 and 537 (numbering relative to wild-type FokI), e.g., substituting a Lys (K) residue for the wild-type Glu (E) residue at position 490 and a Lys (K) residue for the wild-type His (H) residue at position 537 with a Lys (K) residue or an Arg (R) residue (also referred to as "KIK" and "KIR" domains, respectively). See, e.g., U.S. Patent No. 8,772,453. In other embodiments, the engineered cleavage half-domains comprise "Sharkey" mutations (see Guo et al., (2010) J. Mol. Biol. 400(1):96-107).

[0161] The engineered cleavage half-domains described herein can be generated using any suitable method, for example, by site-directed mutagenesis of the wild-type cleavage half-domain (FokI) as described in U.S. Pat. Nos. 8,623,618; 8,409,861; 8,034,598; 7,914,796; and 7,888,121.

[0162] The methods and compositions can also be used to increase the specificity of nuclease pairs for their intended target relative to other unintended cleavage sites, known as off-target sites (see U.S. Patent Publication Nos. 20170218349 and 20180087072). Thus, the nucleases described herein can contain mutations in one or more DNA-binding domain backbone regions and / or one or more mutations in the nuclease cleavage domain. These nucleases can also contain mutations to amino acids within the ZFP DNA-binding domain ("ZFP backbone") that can nonspecifically interact with phosphates on the DNA backbone, but do not contain alterations to the DNA recognition helix. Thus, the ZFPs can contain mutations in cationic amino acid residues in the ZFP backbone that are not required for nucleotide target specificity. In some embodiments, these mutations in the ZFP backbone include mutating cationic amino acid residues to neutral or anionic amino acid residues. In some embodiments, these mutations in the ZFP backbone include mutating polar amino acid residues to neutral or nonpolar amino acid residues. In preferred embodiments, mutations are made at positions (-5), (-9), and / or (-14) relative to the DNA-binding helix. In some embodiments, a zinc finger may contain one or more mutations at positions (-5), (-9), and / or (-14). In yet another embodiment, one or more zinc fingers of a multi-fingered zinc finger protein may contain mutations at positions (-5), (-9), and / or (-14). In some embodiments, the amino acid at positions (-5), (-9), and / or (-14) (e.g., arginine (R) or lysine (K)) is mutated to alanine (A), leucine (L), Ser (S), Asp (N), Glu (E), Tyr (Y), and / or glutamine (Q).

[0163] In certain embodiments, the engineered cleavage half-domains are derived from the FokI nuclease domain and contain mutations at one or more of amino acid residues 416, 422, 447, 448, and / or 525, numbered relative to wild-type full-length FokI. In some embodiments, mutations at amino acid residues 416, 422, 447, 448, and / or 525 are introduced into FokI "ELD," "ELE," "KKK," "KKR," "KK," "EL," "KIK," "KIR," and / or Sharkey, as described above.

[0164] Additionally, methods are described herein for increasing the specificity of cleavage activity through independent titration of engineered cleavage half-domain partners of a nuclease complex. In some embodiments, the ratio of the two partners (half-cleavage domains) is 1:2, 1:3, 1:4, 1:5, 1:6, 1:8, 1:9, 1:10, or 1:20, or any value therebetween. In other embodiments, the ratio of the two partners is greater than 1:30. In other embodiments, the two partners are deployed at a ratio selected to be different from 1:1. When used individually or in combination, the methods and compositions disclosed herein result in a surprising and unexpected increase in targeting specificity due to reduced off-target cleavage activity. The nucleases used in these embodiments may include ZFNs, paired ZFNs, TALENs, paired TALENs, CRISPR / Cas, CRISPR / dCas, and TtAgo, or any combination thereof.

[0165] Alternatively, nucleases can be assembled at nucleic acid target sites in vivo using so-called "split enzyme" technology (see, e.g., U.S. Patent Publication No. 20090068164). The components of such split enzymes can be expressed in separate expression constructs, or the individual components can be linked in a single open reading frame separated, for example, by a self-cleaving 2A peptide or an IRES sequence. The components can be individual zinc finger binding domains or domains of meganuclease nucleic acid binding domains.

[0166] Nucleases can be screened for activity prior to use, for example, in a yeast-based chromosomal system as described in U.S. Patent No. 8,563, 314. Expression of the nuclease can be under the control of a constitutive or inducible promoter, for example, the galactokinase promoter, which is activated (derepressed) in the presence of raffinose and / or galactose and repressed in the presence of glucose.

[0167] The Cas9-associated CRISPR / Cas system comprises two non-coding RNA components: a tracrRNA and a pre-crRNA array containing a nuclease guide sequence (spacer) separated by identical direct repeats (DRs). To achieve genome engineering using the CRISPR / Cas system, both of these RNAs must be functional (see Cong et al., (2013) Sciencexpress 1 / 10.1126 / science 1231143). In some embodiments, the tracrRNA and pre-crRNA are provided by separate expression constructs or as separate RNAs. In other embodiments, chimeric RNAs are constructed in which an engineered mature crRNA (which confers target specificity) is fused to a tracrRNA (which confers interaction with Cas9) to generate a chimeric cr-RNA·tracrRNA hybrid (also called a single-guide RNA). (See Jinek ibid and Cong, ibid.).

[0168] target site As described in detail above, DNA domains can be engineered to bind to any sequence selected at a genetic locus, e.g., albumin or other safe harbor genes. Engineered DNA-binding domains may have novel binding specificities compared to naturally occurring DNA-binding domains. Engineering methods include, but are not limited to, rational design and various types of selection. Rational design, for example, involves using a database containing triplet (or quadruplet) nucleotide sequences and individual (e.g., zinc finger) amino acid sequences, in which each triplet or quadruplet nucleotide sequence is associated with one or more amino acid sequences of a DNA-binding domain that binds to that particular triplet or quadruplet sequence. See, e.g., commonly owned U.S. Patent Nos. 6,453,242 and 6,534,261, which are incorporated herein by reference in their entireties. Rational design of TAL-effector domains can also be performed. See, e.g., U.S. Patent No. 8,586,526.

[0169] Exemplary selection methods applicable to DNA binding domains, including phage display and two-hybrid systems, are disclosed in U.S. Patent Nos. 5,789,538; 5,925,523; 6,007,988; 6,013,453; 6,410,248; 6,140,466; 6,200,759; and 6,242,568; as well as WO98 / 37186; WO98 / 53057; WO00 / 27878; WO01 / 88197; and GB 2,338,237.

[0170] Methods for target site selection, nucleases, and the design and construction of fusion proteins (and the polynucleotides encoding them) are known to those of skill in the art and are described in U.S. Pat. Nos. 7,888,121 and 8,409,891, which are incorporated by reference herein in their entireties.

[0171] Furthermore, as disclosed in these and other references, DNA-binding domains (e.g., multi-finger zinc finger proteins) may be linked together using any suitable linker sequence, including, for example, linkers of five or more amino acids. For exemplary linker sequences of six or more amino acids in length, see, e.g., U.S. Patent Nos. 9,567,609; 6,479,626; 6,903,185; and 7,153,949. The proteins described herein may include any combination of suitable linkers between the individual DNA-binding domains of the protein.

[0172] donor As described above, methods and compositions are provided for the introduction of exogenous sequences (also referred to as "donor constructs" or "donor sequences" or "donors") into a subject, for example, to correct a mutant gene or to increase expression of a gene encoding a protein (e.g., α-Gal A) that is defective or deficient in Fabry disease.

[0173] It is easy to understand that the donor sequence is generally not identical to the genomic sequence in which it is placed. The donor sequence may contain a non-homologous sequence flanked by two regions of homology ("homology arms") to enable efficient HDR at the target location. Furthermore, the donor sequence may comprise a vector molecule containing a sequence that is not homologous to the target region of cellular chromatin. The donor molecule may contain several non-contiguous regions of homology with cellular chromatin. For example, for targeted insertion of a sequence that is not normally present in the target region, the sequence may be present in the donor nucleic acid molecule and be flanked by regions of homology with the sequence of the target region.

[0174] Described herein are methods for targeted insertion of a transgene encoding an α-Gal A protein for insertion at a selected location. The GLA transgene may encode a full-length or truncated α-Gal A protein. The polynucleotide for insertion is sometimes referred to as the "exogenous" polynucleotide, "donor" polynucleotide or molecule, or "transgene." Non-limiting example GLA donor constructs are shown in Figures 1A and 1B.

[0175] The donor polynucleotide may be single-stranded and / or double-stranded DNA or RNA and may be introduced into cells in linear or circular form. See, e.g., U.S. Patent Nos. 8,703,489 and 9,255,259. The donor sequence(s) may also be contained within a DNA MC, which may be introduced into cells in circular or linear form. See, e.g., U.S. Patent Publication No. 20140335063. When introduced in linear form, the ends of the donor sequence may be protected (e.g., from exonuclease degradation) by methods known to those skilled in the art. For example, one or more dideoxynucleotide residues may be added to the 3' end of the linear molecule, and / or self-complementary oligonucleotides may be ligated to one or both ends. See, e.g., Chang et al. (1987) Proc. Natl. Acad. Sci. USA 84:4959-4963; Nehls et al. See, al. (1996) Science 272:886-889. Additional methods for protecting exogenous polynucleotides from degradation include, but are not limited to, the addition of terminal amino group(s) and the use of modified internucleoside linkages such as, for example, phosphorothioate, phosphoramidate, and O-methylribose or deoxyribose residues.

[0176] Polynucleotides can be introduced into cells as part of viral or non-viral vector molecules that contain additional sequences, such as origins of replication, promoters, and genes encoding antibiotic resistance. Additionally, donor polynucleotides can be introduced as naked nucleic acid, as nucleic acid complexed with agents such as liposomes or poloxamers, or delivered by viruses (e.g., adenovirus, AAV, herpesvirus, retrovirus, lentivirus, and integrase-deficient lentivirus (IDLV)).

[0177] The donor may be inserted such that its expression is driven at the integration site by the endogenous promoter, i.e., the promoter that drives expression of the endogenous gene into which the donor is inserted (e.g., highly expressed albumin, AAVS1, HPRT, etc.). However, it will be apparent that the donor may also include a promoter and / or enhancer, e.g., a constitutive promoter or an inducible or tissue-specific promoter. In some embodiments, the donor is maintained in the cell as an expression plasmid, such that the gene is expressed extrachromosomally.

[0178] The donor molecule may be inserted into an endogenous gene such that all, a portion, or none of the endogenous gene is expressed. For example, a transgene described herein may be inserted into an albumin or other locus such that a portion of the endogenous albumin sequence (N-terminal and / or C-terminal to the transgene encoding a lysosomal enzyme) is expressed, e.g., as a fusion with a transgene encoding an α-Gal A protein(s), or none of the endogenous albumin sequence is expressed. In other embodiments, a transgene (e.g., with or without additional coding sequence for albumin, etc.) is integrated into any endogenous locus, e.g., a safe harbor locus.

[0179] When an endogenous sequence (endogenous or part of a transgene) is expressed along with a transgene, the endogenous sequence (e.g., albumin, etc.) may be a full-length sequence (wild-type or mutant) or a partial sequence. Preferably, the endogenous sequence is functional. Non-limiting examples of functions of these full-length or partial sequences (e.g., albumin) include extending the serum half-life of the polypeptide expressed by the transgene (e.g., a therapeutic gene) and / or acting as a carrier.

[0180] Additionally, although not required for expression, exogenous sequences may also include transcriptional or translational control sequences, such as sequences encoding promoters, enhancers, insulators, internal ribosome entry sites, 2A peptides, and / or polyadenylation signals.

[0181] The foreign sequence linked to the transgene may also include a signal peptide that aids in the processing and / or secretion of the encoded protein. Non-limiting examples of these signal peptides include those derived from albumin, IDS, and Factor IX.

[0182] In certain embodiments, the foreign sequence (donor) comprises a fusion of the protein of interest with the extracellular domain of a membrane protein as its fusion partner, positioning the fusion protein on the surface of the cell. This allows the protein encoded by the transgene to potentially function in serum. In the case of Fabry disease, the α-Gal A enzyme encoded by the transgene acts on metabolic products that accumulate in serum from their location on the surface of the cell (e.g., RBCs). Furthermore, when RBCs are phagocytosed by splenic macrophages, as is the normal process of degradation, the lysosomes formed when the macrophages phagocytosed the cells will expose the membrane-bound fusion protein to a high concentration of metabolic products in the lysosomes at a pH higher than the enzyme's natural pH preference. Non-limiting examples of possible fusion partners are shown in Table 2 below. [Table 2]

[0183] In some cases, the expression construct may contain a modified endogenous GLA gene. For example, the endogenous gene may be codon-optimized. Furthermore, while antibody responses to enzyme replacement therapy vary for the particular therapeutic enzyme in question and for each individual patient, significant immune responses have been observed in many Fabry disease patients treated with enzyme replacement using wild-type α-Gal A. A transgene is considered to produce a therapeutic protein if it increases the amount (and / or activity) of the protein compared to subjects without the transgene. Furthermore, the relevance of these antibodies to the efficacy of treatment varies (see Katherine Ponder, (2008) J Clin Invest 118(8):2686). Thus, the methods and compositions described herein may involve the generation of expression constructs with modified sequences compared to wild-type GLA, including, but not limited to, functionally silent amino acid changes at sites known to be stimulatory epitopes for the endogenous immune response, and / or modifications resulting in truncations that reduce the immunogenicity of polypeptides produced by such sequences.

[0184] Patients with Fabry disease often suffer from neurological sequelae due to a deficiency of the α-Gal A enzyme in the brain. Unfortunately, due to the impermeability of the blood-brain barrier, it is often difficult to deliver therapeutic substances to the brain via the blood. Therefore, methods and compositions may be used in conjunction with methods to increase delivery of therapeutic substances to the brain, including, but not limited to, methods that cause temporary opening of tight junctions between brain capillaries, such as the use of temporary osmotic disruption by intracarotid administration of hypertonic mannitol solution, the use of focused ultrasound, and the administration of bradykinin analogs (Matsukado et al. (1996) Neurosurgery 39:125). Alternatively, therapeutic substances may be designed to utilize receptors or transport mechanisms for specific delivery to the brain. Examples of specific receptors that can be used include the transferrin receptor, insulin receptor, or low-density lipoprotein receptor-related proteins 1 and 2 (LRP-1 and LRP-2). LRP is known to interact with a series of secreted proteins, such as apoE, tPA, and PAI-1, and therefore fusion of the recognition sequence of one of these proteins to LRP can facilitate transport of the enzyme to the brain after expression of the therapeutic protein in the liver and secretion into the bloodstream (see Gabathuler, (2010) ibid.).

[0185] cell Genetically modified cells (e.g., stem cells, progenitor cells, liver cells, muscle cells, etc.) containing an exogenous GLA transgene (integrated or extrachromosomal) are provided, including cells produced by the methods described herein. These cells can be used to provide α-Gal A protein to a subject with Fabry disease, for example, by administering the cell(s) to a subject in need thereof, or by isolating the α-Gal A protein produced by the cells and administering the protein to a subject in need thereof (enzyme replacement therapy). Alternatively, the cells can be generated in vivo in a subject by administering an expression construct described herein. Thus, isolated, in vivo genetically modified cells are provided. Also provided are vectors (e.g., viral vectors such as AAV or Ad, or lipid nanoparticles) containing the GLA transgene for use in any of the methods described herein, including for use in treating Fabry disease.

[0186] In any of the methods described herein, the GLA transgene may be inserted into the genome of a target cell using a nuclease. Non-limiting examples of suitable nucleases include zinc finger nucleases (ZFNs), TALENs (transcription activator-like protein nucleases), and / or CRISPR / Cas nuclease systems, which comprise a DNA-binding molecule and one or more nuclease domains (e.g., cleavage domains and / or cleavage half-domains) that bind to a target site in a region of interest in the cell's genome (e.g., a disease-related gene, a highly expressed gene, an albumin gene, or other safe harbor gene). Cleavage domains and cleavage half-domains can be derived, for example, from various restriction endonucleases, Cas proteins, and / or homing endonucleases. In certain embodiments, the zinc finger domain recognizes a target site in the albumin or globin gene of erythroid progenitor cells (RBCs). See, e.g., U.S. Patent No. 9,877,988, incorporated herein by reference in its entirety. In other embodiments, the nuclease (e.g., ZFN, TALEN, and / or CRISPR / Cas system) binds to and / or cleaves a safe harbor gene, such as the CCR5 gene, the PPP1R12C (also known as AAVS1) gene, the albumin, the HPRT, or the Rosa gene. See, e.g., U.S. Patent Nos. 9,877,988; 9,567,573; 9,447,434; 9,394,545; 9,222,105; 9,206,404; 9,150,847; 8,895,264; 8,771,985; 8,106,25 See U.S. Patent Publication Nos. 20030232410 and 20060063231. The nuclease (or components thereof) may be provided as a polynucleotide encoding one or more of the nucleases described herein (e.g., ZFN, TALEN, and / or CRISPR / Cas systems).The polynucleotide may be, for example, mRNA. In some embodiments, the mRNA may be chemically modified (see, e.g., Kormann et al., (2011) Nature Biotechnology 29(2):154-157). In other embodiments, the mRNA may include an ARCA cap (see, U.S. Patent Nos. 7,074,596 and 8,153,773). In yet other embodiments, the mRNA may include a mixture of unmodified and modified nucleotides (see, U.S. Patent Publication No. 20120195936). In yet other embodiments, the mRNA may include a WPRE element (see, U.S. Patent No. 10,179,918).

[0187] In another aspect, genetically modified cells (e.g., stem cells, progenitor cells, liver cells, muscle cells, etc.) bearing a desired GLA transgene (optionally incorporated using a nuclease) are described. In some embodiments, the edited stem or progenitor cells may then be expanded and induced to differentiate ex vivo into mature edited cells, which are then administered to the patient. Thus, cells derived from the genetically edited (modified) GLA-producing stem or progenitor cells described herein may be used. In other embodiments, edited progenitor cells (e.g., CD34+ stem cells) are administered in a bone marrow transplant, which, after successful transplantation, expands to produce edited cells, which then differentiate and mature in vivo and contain the biologic expressed from the GLA transgene. In some embodiments, edited CD34+ stem cells are administered intravenously to a patient, allowing the edited cells to migrate to the bone marrow, differentiate, mature, and produce α-Gal A protein. In other embodiments, the edited stem cells are muscle stem cells, which are then introduced into muscle tissue. In some embodiments, the engineered nuclease is a zinc finger nuclease (ZFN) (the term "ZFN" includes paired ZFNs), in other embodiments, the nuclease is a TALE nuclease (TALEN) (the term "TALEN" includes paired TALENs), and in other embodiments, a CRISPR / Cas system is used. The nuclease may be engineered to have specificity for safe harbor loci, genes associated with disease, or genes highly expressed in cells. By way of non-limiting example only, a safe harbor locus may be the AAVS1 locus, the CCR5 gene, albumin, or HPRT gene, while a disease-associated gene may be the GLA gene, which encodes alpha-galactosidase A.

[0188] The GLA transgene can be full-length or modified, and can be expressed extrachromosomally or integrated into the cell's genome in a targeted manner using one or more nucleases. Unlike random integration, nuclease-mediated targeted integration ensures that the transgene is integrated into a specific gene. The transgene can be integrated anywhere in the target gene. In certain embodiments, the transgene is integrated at or near the nuclease binding and / or cleavage site, e.g., within 1 to 300 base pairs (or any number of base pairs therebetween) upstream or downstream of the site of cleavage and / or binding site, more preferably within 1 to 100 base pairs (or any number of base pairs therebetween) on either side of the cleavage and / or binding site, and even more preferably within 1 to 50 base pairs (or any number of base pairs therebetween) on either side of the cleavage and / or binding site. In certain embodiments, the integrated sequence does not include any vector sequences (e.g., viral vector sequences).

[0189] Any cell type, including but not limited to cells or cell lines, may be genetically modified as described herein to contain a transgene. Other non-limiting examples of genetically modified cells described herein include T cells (e.g., CD4+, CD3+, CD8+, etc.); dendritic cells; B cells; autologous (e.g., patient-derived) muscle cells, brain cells, etc. In certain embodiments, the cells are liver cells and are modified in vivo. In certain embodiments, the cells are stem cells, including heterologous pluripotent, totipotent, or multipotent stem cells (e.g., CD34+ cells, induced pluripotent stem cells (iPSCs), embryonic stem cells, or the like). In certain embodiments, the cells described herein are patient-derived stem cells.

[0190] The cells described herein are useful for treating and / or preventing Fabry disease in subjects with the disorder, for example, by in vivo therapy. Ex vivo therapy is also provided, for example, when the nuclease-modified cells can be expanded and then reintroduced into the patient using standard techniques. See, e.g., Tebas et al (2014) New Eng J Med 370(10):901. In the case of stem cells, in vivo differentiation of these progenitor cells (from the donor into which they were inserted) into cells expressing functional proteins also occurs after injection into the subject.

[0191] Also provided are pharmaceutical compositions comprising the cells described herein. Additionally, the cells may be cryopreserved prior to administration to a patient.

[0192] delivery The cDNA expression constructs, nucleases, polynucleotides encoding these nucleases, donor polynucleotides and / or compositions (e.g., cells, proteins, polynucleotides, etc.) described herein may be delivered in vivo or ex vivo by any suitable means.

[0193] Methods for delivering the nucleases described herein are described, for example, in U.S. Patent Nos. 6,453,242; 6,503,717; 6,534,261; 6,599,692; 6,607,882; 6,689,558; 6,824,978; 6,933,113; 6,979,539; 7,013,219; and 7,163,824, the disclosures of all of which are incorporated herein by reference in their entireties.

[0194] The expression constructs and / or nucleases described herein may also be delivered using vectors containing sequences encoding one or more zinc finger, TALEN, and / or Cas protein(s). Any vector system may be used, including, but not limited to, plasmid vectors, retroviral vectors, lentiviral vectors, adenoviral vectors, poxvirus vectors, herpesvirus vectors, and adeno-associated virus vectors. See also U.S. Patent Nos. 6,534,261; 6,607,882; 6,824,978; 6,933,113; 6,979,539; 7,013,219; and 7,163,824, which are incorporated herein by reference in their entirety. Furthermore, it will be apparent that any of these vectors may contain one or more sequences required for treatment. Thus, when more than one nuclease and donor construct are introduced into a cell, the nuclease and / or donor polynucleotide may be carried on the same or different vectors. When multiple vectors are used, each vector may contain sequences encoding one or more nucleases and / or donor constructs.

[0195] Conventional viral and non-viral gene transfer methods can be used to introduce cDNA expression constructs or nucleic acids and / or expression constructs encoding nucleases into cells (e.g., mammalian cells) and target tissues. Non-viral vector delivery systems include DNA plasmids, naked nucleic acids, and nucleic acids complexed with delivery vehicles such as liposomes or poloxamers. Viral vector delivery systems include DNA and RNA viruses that have either episomal or integrated genomes after delivery to cells. For reviews of gene therapy procedures, see Anderson, Science 256:808-813 (1992); Nabel & Felgner, TIBTECH 11:211-217 (1993); Mitani & Caskey, TIBTECH 11:162-166 (1993); Dillon, TIBTECH 11:167-175 (1993); Miller, Nature 357:455-460 (1992); Van Brunt, Biotechnology 6(10):1149-1154 (1988); Vigne, Restorative Neurology and Neuroscience 8:35-36 (1995); Kremer & Perricaudet, British Medical Bulletin 51(1):31-44 (1995); Haddada et al., in Current Topics in Microbiology and Immunology Doerfler and Bohm (eds.) (1995); and Yu et al., Gene See Therapy 1:13-26 (1994).

[0196] Non-viral methods for nucleic acid delivery include electroporation, lipofection, microinjection, biolistics, virosomes, liposomes, immunoliposomes, polycation or lipid:nucleic acid complexes, naked DNA, artificial virions, and drug-enhanced DNA uptake. Sonoporation, for example, using the Sonitron 2000 system (Rich-Mar), can also be used to deliver nucleic acids.

[0197] Further exemplary nucleic acid delivery systems include those provided by Amaxa Biosystems (Cologne, Germany), Maxcyte, Inc. (Rockville, Maryland), BTX Molecular Delivery Systems (Holliston, MA) and Copernicus Therapeutics Inc. (see, e.g., US6008336). Lipofection is described, for example, in U.S. Patent Nos. 5,049,386; 4,946,787; and 4,897,355, and lipofection reagents are commercially available (e.g., Transfectam™ and Lipofectin™). Cationic and neutral lipids suitable for efficient receptor-recognition lipofection of polynucleotides include those described by Felgner, WO91 / 17424, WO91 / 16024.

[0198] The preparation of lipid:nucleic acid complexes, including targeted liposomes such as immunolipid complexes, is well known to those of skill in the art (e.g., Crystal, Science 270:404-410 (1995); Blaese et al., Cancer Gene Ther. 2:291-297 (1995); Behr et al., Bioconjugate Chem. 5:382-389 (1994); Remy et al., Bioconjugate Chem. 5:647-654 (1994); Gao et al., al., Gene Therapy 2:710-722 (1995);Ahmad et al., Cancer Res. 52:4817-4820 (1992); U.S. Patent No. 4,186,183; U.S. Patent No. 4,217,344; U.S. Patent No. 4,235,871; U.S. Patent No. 4,261,975; U.S. Patent No. 4, 485,054; 4,501,728; 4,774,085; 4,837,028; and 4,946,787).

[0199] The cDNA and / or nuclease compositions described herein can also be delivered using nanoparticles, e.g., lipid nanoparticles (LNPs). See, e.g., Lee et al. See al (2016) Am J Cancer Res 6(5):1118-1134; U.S. Patent No. 10,166,298; and U.S. Publication No. 20180185516.

[0200] Another method of delivery involves packaging the nucleic acid to be delivered into an EnGeneIC delivery vehicle (EDV). These EDVs are specifically delivered to target tissues using bispecific antibodies, where one arm of the antibody has specificity for the target tissue and the other arm has specificity for the EDV. After the antibody delivers the EDV to the surface of the target cell, the EDV is transported into the cell by endocytosis. Once inside the cell, the contents are released (see MacDiarmid et al. (2009) Nature Biotechnology 27(7):643).

[0201] The use of RNA or DNA virus-based systems to deliver nucleic acids encoding engineered ZFPs takes advantage of the highly evolved processes for targeting viruses to specific cells in the body and transporting the viral payload to the nucleus. Viral vectors can be administered directly to a subject (in vivo) or used to treat cells in vitro, and the modified cells are then administered to a subject (ex vivo). Conventional virus-based systems for delivering ZFPs include, but are not limited to, retroviral, lentiviral, adenoviral, adeno-associated viral, vaccinia virus, and herpes simplex viral vectors for gene transfer. Retroviral, lentiviral, and adeno-associated viral gene transfer methods enable integration into the host genome, often resulting in long-term expression of the inserted transgene. Furthermore, high transduction efficiencies have been observed in many different cell types and target tissues.

[0202] The tropism of retroviruses can be modified by incorporating exogenous envelope proteins to expand the potential target population of target cells. Lentiviral vectors are retroviral vectors that can transduce or infect non-dividing cells and generally produce high viral titers. The choice of retroviral gene transfer system depends on the target tissue. Retroviral vectors consist of cis-acting long terminal repeats and have a packaging capacity for up to 6-10 kb of exogenous sequence. Minimal cis-acting LTRs are sufficient for vector replication and packaging, which are then used to integrate therapeutic genes into target cells to result in persistent transgene expression. Widely used retroviral vectors include those based on murine leukemia virus (MuLV), gibbon ape leukemia virus (GaLV), simian immunodeficiency virus (SIV), human immunodeficiency virus (HIV), and combinations thereof (e.g., Buchscher et al., J. Virol. 66:2731-2739 (1992); Johann et al., J. Virol. 66:1635-1640 (1992); Sommerfelt et al., Virol. 176:58-59 (1990); Wilson et al., J. Virol. 63:2374-2378 (1989); Miller et al., J. Virol. 65:2220-2224 (1991)).

[0203] For applications where transient expression is preferred, adenovirus-based systems can be used. Adenovirus-based vectors are capable of very high transduction efficiency in many cell types and do not require cell division. High titers and high levels of expression have been obtained using such vectors. This vector can be produced in large quantities using a relatively simple system. Adeno-associated virus ("AAV") vectors are also used, for example, in the in vitro production of nucleic acids and peptides, and to transduce cells with target nucleic acids for in vivo and ex vivo gene therapy procedures (see, e.g., West et al., Virology 160:38-47 (1987); U.S. Patent No. 4,797,368; WO 93 / 24641; Kotin, Human Gene Therapy 5:793-801 (1994); Muzyczka, J. Clin. Invest. 94:1351 (1994). The construction of recombinant AAV vectors has been described in many publications, including U.S. Pat. No. 5,173,414; Tratschin et al., Mol. Cell. Biol. 5:3251-3260 (1985); Tratschin, et al., Mol. Cell. Biol. 4:2072-2081 (1984); Hermonat & Muzyczka, PNAS 81:6466-6470 (1984); and Samulski et al., J. Virol. 63:03822-3828 (1989).

[0204] At least six viral vector approaches are currently available for gene transfer in clinical trials, which utilize an approach involving complementation of a defective vector with a gene that is inserted into a helper cell line to generate the transduction vehicle.

[0205] pLASN and MFG-S are examples of retroviral vectors that have been used in clinical trials (Dunbar et al., Blood 85:3048-305 (1995); Kohn et al., Nat. Med. 1:1017-102 (1995); Malech et al., PNAS 94:22 12133-12138 (1997)). PA317 / pLASN was the first therapeutic vector used in gene therapy trials (Blaese et al., Science 270:475-480 (1995)). Transduction efficiencies of over 50% were observed with MFG-S packaged vectors (Ellem et al., Immunol Immunother. 44(1):10-20 (1997); Dranoff et al., Hum. Gene Ther. 1:111-2 (1997)).

[0206] Recombinant adeno-associated virus vectors (rAAV) are a promising alternative gene delivery system based on the defective, nonpathogenic parvovirus adeno-associated type 2 virus. All vectors are derived from plasmids that retain only the 145-bp inverted terminal repeats of AAV flanking the transgene expression cassette. Efficient gene transfer and stable transgene delivery via integration into the genome of transduced cells are key features of this vector system. (Wagner et al., Lancet 351:9117 1702-3 (1998); Kearns et al., Gene Ther. 9:748-55 (1996)) Other AAV serotypes can also be used, including, but not limited to, AAV1, AAV3, AAV4, AAV5, AAV6, AAV8, AAV 8.2, AAV9, and AAVrhlO, as well as pseudotyped AAVs such as AAV2 / 8, AAV2 / 5, and AAV2 / 6.

[0207] AAV can be produced on a clinical scale by many different processes. Examples of available systems include (1) plasmid DNA transfection in mammalian cells, (2) Ad infection of stable mammalian cell lines, (3) infection of mammalian cells with recombinant herpes simplex virus (rHSV), and (4) infection of insect cells (Sf9 cells) with recombinant baculovirus (for a review, see Penaud-Budloo et al. (2018) Mol Ther Methods Clin Dev. 8: 166-180).

[0208] Replication-deficient recombinant adenoviral vectors (Ad) can be produced at high titers and readily infect many different cell types. Most adenoviral vectors are engineered so that a transgene replaces the Ad E1a, E1b, and / or E3 genes; the replication-deficient vector is then propagated in human 293 cells, which supply the deleted gene functions in trans. Ad vectors can transduce multiple tissue types in vivo, including non-dividing, differentiated cells such as those found in the liver, kidney, and muscle. Conventional Ad vectors have a large carrying capacity. An example of the use of Ad vectors in clinical trials included polynucleotide therapy for anti-tumor immunization via intramuscular injection (Sterman et al., Hum. Gene Ther. 7:1083-9 (1998)). Further examples of the use of adenoviral vectors for gene transfer in clinical trials include Rosenecker et al., Infection 24:1 5-10 (1996); Sterman et al., Hum. Gene Ther. 9:7 1083-1089 (1998); Welsh et al., Hum. Gene Ther. 2:205-18 (1995);Alvarez et al., Hum. Gene Ther. 5:597-613 (1997); Topf et al., Gene Ther. 5:507-513 (1998); Sterman et al., Hum. Gene Ther. 7:1083-1089 (1998).

[0209] Packaging cells are used to form viral particles capable of infecting host cells. Examples of such cells include 293 cells, which package adenovirus, and ψ2 or PA317 cells, which package retrovirus. Viral vectors used in gene therapy are typically generated by producer cell lines that package nucleic acid vectors into viral particles. The vectors generally contain the minimum viral sequences required for packaging and subsequent integration into the host (if applicable), with other viral sequences replaced by expression cassettes encoding the proteins to be expressed. Missing viral functions are supplied in trans by the packaging cell line. For example, AAV vectors used in gene therapy generally contain only the inverted terminal repeat (ITR) sequences from the AAV genome required for packaging and integration into the host genome. Viral DNA is packaged in a cell line containing a helper plasmid encoding the other AAV genes, namely rep and cap, but lacking the ITR sequences. The cell line is also infected with adenovirus as a helper. The helper virus facilitates AAV vector replication and expression of AAV genes from the helper plasmid. The helper plasmid is not packaged in significant amounts due to the lack of ITR sequences. Adenovirus contamination can be reduced by, for example, heat treatment, to which adenovirus is more sensitive than AAV.

[0210] In many gene therapy applications, it is desirable for gene therapy vectors to be delivered with high specificity to a particular tissue type. Therefore, viral vectors can be engineered to have specificity for a given cell type by expressing a ligand as a fusion protein with a viral coat protein on the outer surface of the virus. The ligand is selected to have affinity for a receptor known to be present in the desired cell type. For example, Han et al., Proc. Natl. Acad. Sci. USA 92:9747-9751 (1995) reported that Moloney murine leukemia virus can be engineered to express human heregulin fused to gp70, and that the recombinant virus infects specific human breast cancer cells expressing the human epidermal growth factor receptor. This principle can be extended to other virus-target cell pairs, where the target cell expresses a receptor and the virus expresses a fusion protein containing a ligand for that cell surface receptor. For example, filamentous phage can be engineered to display antibody fragments (e.g., FAB or Fv) with specific binding affinity for virtually any selected cellular receptor. Although the above description applies primarily to viral vectors, the same principles are applicable to non-viral vectors. Such vectors may be engineered to contain specific uptake sequences that facilitate uptake by specific target cells.

[0211] Gene therapy vectors can generally be delivered in vivo by administration to an individual patient by systemic administration (e.g., intravenous, intraperitoneal, intramuscular, subcutaneous, or intracranial injection) or local application, as described below. Alternatively, vectors can be delivered ex vivo to cells such as explanted cells from an individual patient (e.g., lymphocytes, bone marrow aspirate, tissue biopsy sample) or universal donor hematopoietic stem cells, followed by reimplantation of the cells into the patient, usually after selection of cells into which the vector has been incorporated.

[0212] Nuclease-containing vectors (e.g., retroviruses, adenoviruses, liposomes, etc.) and / or donor constructs (expression constructs) can also be administered directly to an organism for in vivo cell transduction. Alternatively, naked DNA may be administered. Administration is by any route typically used to ultimately contact molecules with blood or tissue cells, including, but not limited to, injection, infusion, topical application, and electroporation. Suitable methods for administering such nucleic acids are available and well known to those skilled in the art, and while more than one route can be used to administer a particular composition, certain routes can often produce a more rapid and effective response than others.

[0213] Suitable vector for introducing polynucleotide described herein includes non-integrating lentiviral vector (IDLV).See, for example, Ory et al.(1996) Proc.Natl.Acad.Sci.USA 93:11382-11388;Dull et al.(1998) J.Virol.72:8463-8471;Zuffery et al.(1998) J.Virol.72:9873-9880;Follenzi et al.(2000) Nature Genetics 25:217-222.

[0214] Pharmaceutically acceptable carriers are determined in part by the particular composition being administered, as well as by the particular method used to administer the composition. Thus, as noted below, there are a wide variety of suitable formulations of pharmaceutical compositions available (see, e.g., Remington's Pharmaceutical Sciences, 17th ed., 1989).

[0215] It will be apparent that the nuclease-encoding sequence and the donor construct can be delivered using the same or different systems. For example, the donor polynucleotide can be delivered by a plasmid, while one or more nucleases can be delivered by an AAV vector. Furthermore, the different vectors can be administered by the same or different routes (intramuscular injection, tail vein injection, other intravenous injection, intraperitoneal administration, and / or intramuscular injection). The vectors can be delivered simultaneously or in any sequential order.

[0216] Formulations for both ex vivo and in vivo administration include suspensions or emulsions. The active ingredient is often mixed with a pharmaceutically acceptable excipient that is compatible with the active ingredient. Suitable excipients include, for example, water, physiological saline, dextrose, glycerol, ethanol, etc., and combinations thereof. In addition, the composition may contain small amounts of auxiliary substances, such as wetting agents, emulsifiers, pH buffering agents, stabilizers, or other agents that improve the effectiveness of the pharmaceutical composition.

[0217] Purpose The methods disclosed herein contemplate the treatment and / or prevention of Fabry disease (e.g., a lysosomal storage disease). Treatment may involve inserting a corrective disease-associated GLA transgene into a cellular safe harbor locus (e.g., albumin) for expression and release of the required enzyme into the bloodstream. The corrective α-Gal A-encoding transgene may encode a wild-type or modified protein; and / or may include a codon-optimized GLA transgene; and / or a transgene from which an epitope can be removed without functionally altering the protein. In some cases, the method involves inserting an episome expressing an α-Gal A-encoding transgene into cells for expression and release of the required enzyme into the bloodstream. Insertion into secretory cells, such as liver cells, for release of products into the bloodstream is particularly useful. The methods and compositions can also be used in any situation in which it is desirable to provide hematopoietic stem cells with a GLA transgene encoding one or more therapeutic agents such that mature cells (e.g., RBCs) derived from the hematopoietic stem cells contain the therapeutic α-Gal A protein. These stem cells can be differentiated in vitro or in vivo and may be derived from a universal donor type of cell that can be used for all patients. Furthermore, the cells may contain transmembrane proteins that pass through cells in the body. Treatment may also involve the use of patient cells containing a therapeutic transgene, in which case the cells are developed ex vivo and then introduced back into the patient. For example, HSCs containing a suitable α-Gal A-encoding transgene may be inserted into the patient via bone marrow transplantation. Alternatively, stem cells, such as muscle stem cells or iPSCs, edited with an α-Gal A-encoding transgene can also be injected into muscle tissue.

[0218] Thus, this technology may be used in situations where a patient is missing some protein due to a problem (e.g., expression levels or a protein that is expressed as poorly or non-functional). Expression of a transgene that corrects or restores functionality in subjects with Fabry disease is particularly useful.

[0219] As non-limiting examples, various methods for generating functional α-Gal A proteins to replace defective or missing α-Gal A proteins can be achieved and used to treat Fabry disease. A nucleic acid donor encoding a protein can be inserted into a safe harbor locus (e.g., albumin or HPRT) and expressed using either an exogenous promoter or a promoter present in the safe harbor. Insertion of a GLA transgene into the albumin locus of liver cells is particularly useful, in which case the GLA transgene further contains a sequence encoding a signal peptide involved in secretion of the expressed α-Gal A protein from the liver cells into the bloodstream. Alternatively, the donor can be used to correct the defective gene in situ. The desired α-Gal A-encoding transgene can be inserted into CD34+ stem cells and returned to the patient during bone marrow transplantation. Finally, a nucleic acid donor can be inserted into CD34+ stem cells at the beta-globin locus, such that mature red blood cells derived from the stem cells contain a high concentration of the biologic encoded by the nucleic acid donor. The RBCs containing the biologic can then be guided to the correct tissue by transmembrane proteins (e.g., receptors or antibodies). Additionally, RBCs may be sensitized ex vivo by electrosensitization to make them more susceptible to destruction after exposure to an energy source (see WO2002007752).

[0220] In some applications, endogenous genes may be knocked out using the methods and compositions described herein. Examples of this embodiment include knocking out aberrant gene regulators or aberrant disease-associated genes. In some applications, the aberrant endogenous gene may be replaced, either functionally or in situ, with a wild-type version of the gene. The inserted gene may also be modified to improve expression or reduce immunogenicity of the therapeutic α-Gal A protein. In some applications, the inserted α-Gal A-encoding transgene is a fusion protein that increases transport to selected tissues, such as the brain.

[0221] Of course, suitable GLA donors include any GLA transgene, including but not limited to those exemplified below.

[0222] The present disclosure also provides methods and compositions for the production of cells (e.g., RBCs) carrying the α-Gal A therapeutic protein for the treatment of Fabry disease, which can be used universally in all patients as a homogenous product. This allows for the development of a single product for the treatment of patients with, for example, Fabry disease. Such carriers may include transmembrane proteins that aid in the transport of the cells. In one embodiment, the transmembrane protein includes an antibody, while in other embodiments, the transmembrane protein includes a receptor.

[0223] In some embodiments, the GLA transgene donor is transfected or transduced into cells for episomal or extrachromosomal maintenance of the transgene. In some embodiments, the GLA transgene donor is carried in a vector containing a regulatory domain that controls expression of the transgene donor. In some cases, the regulatory domain that controls transgene expression is endogenous to the expressed transgene, while in other cases, the regulatory domain is heterologous to the transgene. In some embodiments, the GLA transgene is carried in a viral vector, while in other embodiments, it is carried in a plasmid or minicircle. In some embodiments, the viral vector is AAV, Ad, or LV. In another embodiment, the vector containing the transgene donor is delivered to appropriate target cells in vivo so that the α-Gal A therapeutic protein encoded by the transgene donor is released into the bloodstream when the transgene donor vector is delivered to hepatocytes.

[0224] In another embodiment, the present disclosure describes progenitor cells (muscle stem cells, progenitor cells, or CD34+ hematopoietic stem cells (HSPC) cells) into which a GLA transgene has been inserted, such that mature cells derived from the progenitor cells contain high levels of the α-Gal A product encoded by the transgene. In some embodiments, these progenitor cells are induced pluripotent stem cells (iPSCs).

[0225] In some embodiments, the methods may be used in vivo in transgenic animal systems. In some embodiments, transgenic animals may be used for model development in which a transgene encodes the human α-Gal A protein. In some cases, transgenic animals may be knocked out at the corresponding endogenous locus, allowing for the development of an in vivo system in which the human protein can be studied in isolation. Such transgenic models can be used for screening purposes to identify small molecules, large biomolecules, or other elements that may interact with or modify the human protein of interest. In some embodiments, a GLA transgene is integrated into a selected (e.g., high-expression or safe harbor) locus into stem cells (e.g., embryonic stem cells, induced pluripotent stem cells, hepatic stem cells, neural stem cells, etc.) or non-human animal embryos obtained by any of the methods described herein and standard methods in the art, and the embryos are then implanted to produce live animals. The animals are then raised to sexual maturity and allowed to produce offspring, at least some of which contain the integrated GLA transgene.

[0226] In any of the preceding embodiments, the methods and compositions may be combined with other therapeutic agents for the treatment of subjects with Fabry disease. In some embodiments, the methods and compositions include the use of molecular chaperones to ensure proper folding of Fabry proteins (Hartl et al. (2011) Nature 465: 324-332). In some embodiments, the chaperones can be selected from well-known chaperone proteins such as AT1001 (Benjamin et al. (2012) Mol Ther 20(4):717-726), AT2220 (Khanna et al. (2014) PLoS ONE 9(7): e102092, doi:10.1371), and Migalastat (Benjamin et al. (2016) Genet Med doi: 10.1038 / gim.2016.122). In some embodiments, the methods and compositions are used in combination with methods and compositions that enable crossing of the blood-brain barrier. In other embodiments, the methods and compositions are used in combination with compounds known to suppress an immune response in a subject.

[0227] Kits are also provided that include the nuclease systems and / or GLA donors described herein. The kits may include nucleic acids (e.g., RNA molecules or ZFN-, TALEN-, and / or CRISPR / Cas system-encoding genes contained in a suitable expression vector) encoding one or more nucleases (ZFNs, ZFN pairs, TALENs, TALEN pairs, and / or CRISPR / Cas systems), donor molecules, expression vectors encoding single guide RNAs suitable for a host cell line, instructions for practicing the methods disclosed herein, and the like.

[0228] These and other aspects will be readily apparent to those of ordinary skill in the art in view of this entire disclosure.

[0229] Unless otherwise defined herein, scientific and technical terms used in connection with this disclosure shall have the meanings commonly understood by those of ordinary skill in the art. Exemplary methods and materials are provided below, although methods and materials similar or equivalent to those described herein can also be used in the practice or testing of this disclosure. In case of conflict, the present specification, including definitions, will control. In general, the nomenclature used in connection with, and techniques of, cardiology, medicine, pharmaceutical and pharmaceutical chemistry, and cell biology described herein are well known and commonly used in the art. Enzymatic reactions and purification techniques are performed according to manufacturer's specifications, as commonly accomplished in the art, or as described herein. Furthermore, unless otherwise required by context, singular terms shall include pluralities, and plural terms shall include the singular. Throughout this specification and embodiments, the words "have" and "comprise" or variations such as "has," "having," "comprises," or "comprising" will be understood to mean the inclusion of a specified integer or group of integers, but not the exclusion of any other integer or group of integers. All publications and other references mentioned herein are incorporated by reference in their entirety. Although many documents are cited herein, this citation does not acknowledge that any of these documents form part of the common general knowledge in the art. As used herein, the term "approximately" or "about," as applied to one or more values ​​of interest, refers to a value similar to the specified reference value. In certain embodiments, the term refers to a range of values ​​that is 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1% or less in either direction (greater or less) of the specified reference value, unless otherwise specified or clear from the context.

[0230] In order that this invention may be better understood, the following examples are set forth. These examples are for illustrative purposes only and are not to be construed as in any way limiting the scope of the invention. [Example]

[0231] Example 1 High plasma α-Gal A activity persists for 3 months in GLAKO mice treated with the variant #4 expression construct A sample of the variant #4 expression construct as shown in Figure 1A was administered to male GLAKO mice to assess pharmacodynamic activity and biodistribution after a single IV dose.

[0232] Male GLAKO mice were 8–12 weeks old at the start of the study. Animals (n = 10–20 males / group) received either a formulation buffer (control mice) containing phosphate-buffered saline (PBS) containing CaCl2, MgCl2, NaCl, sucrose, and Kolliphor (poloxamer) P188 or one of three dose levels of the variant #4 expression vector (2.0E+12, 5.0E+12, or 5.0E+13 vg / kg, respectively; n = 10 / group) as a single 200 μl IV tail injection on day 1. The mice were observed for 3 months. Pharmacokinetic evaluation (plasma α-Gal A activity) results for individual mice are shown in Figure 2, and group means (mean + SD) are shown in Figure 3. Plasma α-Gal A activity is assessed at the AAV / construct dose. Furthermore, plasma α-Gal A activity was more than 300-fold higher than that in physiologically normal or wild-type (non-mutated) subjects (Figure 3). * indicates removal of one outlier due to overperformance).

[0233] Single administration of increasing doses of WPRE-deficient AAV hGLA cDNA (variant #4) was administered using a clinical-scale manufacturing process and resulted in physiological expression of plasma α-Gal A (>300-fold higher than WT) by study day 15, was well tolerated, and remained stable for 3 months after injection. Dose-dependent increases in α-Gal A activity were achieved in the liver, heart, and kidney, with corresponding decreases in Gb3 / lyso-Gb3.

[0234] α-Gal A produced in the liver was secreted into the bloodstream and absorbed by secondary tissues. Figure 4A shows tissue α-Gal A activity in liver lysates, Figure 4B shows tissue α-Gal A activity in kidney lysates, and Figure 4C shows tissue α-Gal A activity in heart lysates.

[0235] Example 2 High levels of α-Gal A activity result in degradation of the corresponding Fabry substrate The variant #4 construct formulation was administered intravenously to GLAKO mice at doses of 0 vg / kg, 2.0E+12 vg / kg, 5.0E+12 vg / kg, or 5.0E+13 vg / kg, and levels of Fabry substrates in mouse plasma and tissues were assessed. Tissues were collected at necropsy 91 days post-administration and assayed for levels of the α-Gal A substrate Gb3 (isoforms C22:0 and C24:0) and its deacylated form, lyso-Gb3, using LC-MS. Briefly, tissues were weighed and mechanically disrupted in a liquid tissue disruption solution (5% MeOH, 95% water, and 0.1% acetic acid) at a ratio of 5 ml per mg of tissue. Then, 10 μl of plasma or tissue slurry was added to 90 μl of precipitation solvent (MeOH with the internal standard N-tricosanoylceramide trihexoside (C23:0, Matreya) added to the solution) in a silicone tube, vortexed, and placed on a shaker plate at room temperature for 30 minutes. The samples were then centrifuged, and 10 μl of the sample was transferred to 90 μl of a single blank matrix (DMSO / MeOH 1:1 + 0.1% DMSO) in a glass LC-MS vial. Samples were analyzed for Gb3 chain length 24:0, the predominant Gb3 species present in GLAKO mice, measured against a standard curve composed of ceramide trihexoside (Gb3, Matreya).

[0236] Globotriaosylsphingosine (lyso-Gb3) was measured in a similar manner using glucosylsphingosine (Matreya) and lyso-ceramide trihexoside (lyso-Gb3, Matreya) as internal standards to generate a standard curve. Data represent the mean + SD of 9 to 20 animals / group, as indicated in the legend. The Fabry substrate, globotriaosylceramide (Gb3), was measured in selected mouse plasma and tissues by mass spectrometry.

[0237] Constant production of α-Gal A should allow for the reduction, and potentially the elimination, of the Fabry disease substrates, Gb3 and lyso-Gb3. As shown in Figures 5A and 5B, dose-related reductions in the levels of the Fabry substrates, Gb3 and lyso-Gb3, were observed in plasma, liver, heart, kidney, and spleen. Most samples from animals in the high-dose group had a greater than 80% reduction in tissue Gb3 levels compared to samples from animals in the formulation control group, as shown in Figure 5B.

[0238] At high dose levels, Gb3 levels in the heart and kidney were reduced to approximately 10% of those in untreated animals, as shown in Figure 6A. In treated subjects, Gb3 levels were below the lower limit of quantitation, as shown in Figure 6B.

[0239] Example 3 Variant #21 expression vector results in plasma α-Gal A activity in vitro and in vivo The levels and activity of secreted human α-Gal A were evaluated in various mouse, cynomolgus monkey, and human primary cells and cell lines after transduction with variant #4 or variant #21 expression vectors, which were produced in 1) HEK293 cells or 2) the Sf9 insect cell line.

[0240] HepG2 cells and iPSC-derived hepatocytes (iCell Hepatocytes) were transduced using standard techniques as described in U.S. Publication No. 20180117181. Briefly, cells were seeded at various densities per well and transduced with either the variant #21 or variant #4 expression construct at multiplicities of infection (MOI) ranging from 100,000 to 600,000 vg / cell. Supernatant samples were collected on days 3 to 7, and α-Gal A enzyme activity was assessed by α-Gal A fluorometric activity assay. Cell pellets were harvested at the end of the study (day 6 or 7).

[0241] The cDNA approach may involve the use of an AAV-delivered expression construct containing the hAAT promoter (Okuyama et al (1996) Hum Gene Ther 7(5):637-45), the HBB-IGG intron (a chimeric intron composed of the 5'-donor site of the first intron of the human beta-globin gene and the branch and 3'-acceptor site of the immunoglobulin gene heavy chain variable region intron), a signal peptide, a coding sequence (the coding sequence is optionally codon-optimized), and the APOE enhancer linked to the bovine growth hormone (e.g., bGH or SPA51) polyA signal sequence.

[0242] HepG2 / C3A cells (also referred to as "HepG2" cells) (ATCC, CRL 10741) were maintained in minimum essential medium (MEM) with Earle's salts and L-glutamine (Corning) supplemented with 10% fetal bovine serum (FBS) (Life Technologies) and 1x penicillin-streptomycin-glutamine (Life Technologies) and incubated at 37°C and 5% CO2. Cells were passaged every 3 to 4 days.

[0243] For transduction, cells were rinsed, trypsinized with 0.25% trypsin / 2.21 mM EDTA (Corning), and resuspended in growth medium. A small aliquot was mixed 1:1 with 0.4% (w / v) trypan blue solution in phosphate-buffered saline (PBS; Corning) and counted using a TC20 Automated Cell Counter (Bio). The cells were counted in a 500-well plate (Rad). The cells were resuspended in growth medium at a density of 2e5 per mL and seeded into 24-well plates (Corning) at 1e5 per well in 0.5 mL of medium. Recombinant AAV2 / 6 particles were mixed with growth medium at the appropriate multiplicity of infection (MOI) and added to the cells. The MOI of the GLA cDNA construct was either 3e4, 1e5, 3e5, or 1e6 vg / cell.

[0244] After transduction, cells were maintained in culture for 6-10 days. Supernatants were collected (if appropriate) on days 3, 5, 7, and 10 and replaced with fresh medium. After the final supernatant collection step, cells were trypsinized and resuspended as described above, then centrifuged to produce a cell pellet, washed with PBS, and stored at -80°C.

[0245] α-Gal A activity was assessed in a fluorometric assay using the synthetic substrate 4-methylumbelliferyl-α-D-galactopyranoside (4MU-α-Gal, Sigma).

[0246] Briefly, 10 microliters of HepG2 cell culture supernatant was dissolved in phosphate buffer (0.1 M citric acid / 0.2 M phosphate buffer, pH 4.6, 1% Triton®) The reaction mixture was mixed with 40 μL of 5 mM 4MU-α-Gal dissolved in PBS (X-100). The reaction was incubated at 37°C and stopped by adding 100 μL of 0.5 M glycine buffer, pH 10.3. The release of 4-methylumbelliferone (4MU) was measured by measuring fluorescence (excitation 365 / emission 450) using a SpectraMax Gemini XS fluorescence reader (Molecular Devices, Sunnyvale, CA).

[0247] A standard curve was generated using a two-fold dilution series of 4MU. The resulting data were fitted to a log-log curve, and the concentration of 4MU in the test samples was calculated using this best-fit curve. Enzyme activity is expressed as nmol of 4MU released per mL of cell culture supernatant per hour of assay incubation time (nmol / hr / mL).

[0248] Turning to Figures 7A and 7B, the variant #21 expression construct has improved α-Gal A potency in vitro over the AAV GLA variant #4 expression vector. In HepG2 cells, as shown in Figure 7A, supernatant α-Gal A activity increased between approximately 4-fold and approximately 9-fold. In iPSC-derived human hepatocytes, supernatant activity increased between approximately 3-fold and approximately 5-fold, as shown in Figure 7B.

[0249] Animals were administered various doses of an episomal AAV (serotype 2 / 6) vector encoding human GLA cDNA (hGLA) driven by a liver-specific promoter lacking (variant #4) or containing (variant #21) the mutated WPRE sequence. Figure 8 shows the increase in GLA A activity with increasing construct dose in the plasma of wild-type mice treated with the variant #21 construct at doses of 2.0E+12vg / kg or 5E+11vg / kg, or the variant #4 construct at doses of 2.0E+12vg / kg or 5E+11vg / kg, or formulation buffer. The results show an approximately 7-fold to 9-fold improvement in plasma activity over 28 days in wild-type mice.

[0250] Expression construct variant #4 was compared to a cDNA construct containing the WPRE sequence (variant #21) in a one-month study using two different AAV doses (AAV carrying the cDNA donor) in wild-type C57BL / 6 mice. Table 1 above shows the complete sequences of the constructs used. The construct containing the cDNA with the WPRE sequence resulted in an average of 7-fold higher levels of plasma α-Gal A activity on day 28 of the study than mice receiving the same dose of the original (non-WPRE-containing) cDNA.

[0251] A 4- to 9-fold increase in GLA activity was observed in the supernatant of HepG2 cells treated with variant #21 (a WPRE-containing construct) compared to variant #4 (no WPRE), and a 3- to 5-fold increase in GLA activity was observed in the supernatant of iCell-derived hepatocytes treated with variant #21 (a WPRE-containing construct) compared to variant #4 (no WPRE). Furthermore, a 7- to 9-fold increase in plasma GLA activity was observed in mice treated with variant #21 (a WPRE-containing construct) compared to variant #4 (no WPRE).

[0252] The high levels of α-Gal A activity observed in these studies, accompanied by a significant reduction in Gb3 / lyso-Gb3 accumulation in key tissues in the GLAKO mouse model, demonstrate that AAV-mediated targeting of hepatocytes, including through a clinical-scale manufacturing process that allows for fast and efficient production of therapeutic vectors, can result in therapeutic levels of human α-Gal A in subjects.

[0253] Therapeutic levels of α-Gal A protein for the treatment of Fabry will be produced in vivo using a cDNA approach, including post-clinical scale production of expression vectors.

[0254] The results, shown in Figure 9 and Table 3 below, demonstrate that the variant #21 expression construct produces plasma α-Gal A activity up to 1,500-fold higher than physiologically normal (wt) levels in vivo. The variant #4 expression construct was administered to C57BL / 6 mice via tail vein injection at 5.0E+12 and 5.0E+13 vg / kg. The variant #21 expression construct was administered to C57BL / 6 mice via tail vein injection at 5.0E+12, 5.0E+13, and 5.0E+14 (not shown). Plasma samples were collected 1 week prior to dosing and on days 8, 15, 22, and 29 and subsequently assessed for α-Gal A enzyme activity by fluorometric assay. Data points represent the mean response per dose + / - SD. The lower limit of quantitation (LLOQ) of the assay is 2.5 nmol / hr / mL. [Table 3]

[0255] Figure 9 shows α-Gal A plasma activity in C57BL / 6 mice over 29 days following treatment with either the variant #21 construct at a dose of 5.0E+13vg / kg, the variant #21 construct at a dose of 5.0E+12vg / kg, the variant #4 construct at a dose of 5.0E+13vg / kg, the variant #4 construct at a dose of 5.0E+12vg / kg, or the formulation buffer.

[0256] Consistent with the in vitro data, plasma and liver GLA levels are higher (up to 21-fold higher) in animals administered the variant #4 expression construct produced in HEK293 cells versus the Sf9 cell line.

[0257] Example 4 Treatment with variant #4 expression vector results in high levels of hepatocyte transduction in GLAKO mice and non-human primates To assess the level of expression construct copies in hepatocytes after IV administration of the variant #4 expression construct, formalin-fixed, paraffin-embedded (FFPE) liver samples from a subset of animals were evaluated by BASESCOPE™ in situ hybridization (ISH). After ISH staining, quantitative image analysis was performed using HALO™ software. Non-coding sequences were targeted. A housekeeping gene probe, PPIB (cyclophilin B), was used as a positive control marker for sample QC to assess RNA quality in tissue samples. The bacterial gene DapB was used as a negative control. A semiquantitative score (on a scale of 0 to 4) was obtained for all samples to assess sample quality and determine QC pass / fail. Most samples had a PPIB (cyclophilin B; housekeeping gene control) score of 3, indicating excellent quality RNA. Most DapB (bacterial gene control) scores were 0, indicating no or negligible nonspecific background. Specific DNA staining signals are visible as dark (red) punctate dots within the cell nuclei. Samples were counterstained with Gill's hematoxylin and shown in light gray (blue).

[0258] Representative ISH images of the liver of a GLAKO mouse administered 5.0+13vg / kg of the variant #4 expression vector at various magnifications are shown in Figure 10 . Representative ISH staining images of the liver of an NHP administered 6.0+13vg / kg of the variant #4 expression vector at various magnifications are shown in Figure 11 . Specific DNA staining signals are observed as dark gray punctate dots within the cell nuclei. The samples were counterstained with Gill's hematoxylin light gray. As shown, 57.5% of the mouse hepatocytes in the representative sample in Figure 10 were positive for the expression vector with 2.34 points / cell and an H-score of 126.82. Impressively, 72.9% of the NHP hepatocytes in the representative sample in Figure 11 were positive for the expression construct with 3.20 points / cell and an H-score of 175.39.

[0259] Overall, a dose-response relationship in mouse liver cells was confirmed for all parameters evaluated, including % positive cells, mean number of dots / cell, and H-score, which was calculated by dividing cells into five bins based on the number of dots per cell and then summing the percentage of cells in each bin according to a weighted formula.

[0260] Figure 12A shows the percentage of GLAKO mouse hepatocytes containing hGLA cDNA in GLAKO mice treated with doses of 2E+12vg / kg, 5E+12vg / kg, and 5E+13vg / kg of the variant #4 construct, or formulation buffer as a control. Figure 12C shows the percentage of hepatocytes containing hGLA cDNA in individual subjects. Similarly, Figure 12B is a graph showing the percentage of hepatocytes containing hGLA cDNA in cynomolgus monkey NHPs treated with doses of 6E+12vg / kg, 1E+13vg / kg, 3E+13vg / kg, and 6E+13vg / kg of the variant #4 construct, or formulation buffer as a control. Figure 12D shows the percentage of hepatocytes containing hGLA cDNA for individual NHP subjects.

[0261] In situ hybridization studies measuring levels of hGLA DNA constructs in the liver demonstrated a dose-response relationship in mouse and NHP hepatocytes, confirming nuclear DNA translocation. High-dose mice (5.0E+13vg / kg) yielded positive staining ranging from 28% to 58% of cells, while high-dose NHPs (6.0E+13vg / kg; with immunosuppression) yielded positive staining ranging from 61% to 73% of cells. Another NHP (without immunosuppression) yielded 49% positive staining.

[0262] Example 5 α-GalA protein and enzyme activity in cynomolgus monkey NHPs after a single intravenous administration of variant #4 expression construct The variant #4 expression construct was evaluated for pharmacology and toxicology in NHPs. A single IV dose of the variant #4 expression construct was administered to male cynomolgus monkeys (n = 3 / group) at 0 (n = 2), 6.0E+12, 1.0E+13, 3.0E+13, or 6.0E+13 vg / kg. To mitigate potential immune responses to the expression vector and / or human α-Gal A, animals received rituximab (10 mg / kg; IV) prior to expression construct administration and methylprednisolone (10 mg / kg; intramuscular) daily throughout the study. An additional group received the variant #4 expression construct at the highest dose (6.0E+13 vg / kg) but was not immunosuppressed. The variant #4 expression construct used was manufactured in a GMP clinical manufacturing process using a baculovirus / Sf9 cell platform.

[0263] Blood was collected before dosing (5 time points) and on days 7, 14, 21, 28, 35, 42, 49, and 56 and processed to plasma. These plasma samples were evaluated for human α-Gal A protein levels and α-Gal A activity. At necropsy on day 56, four liver segments (two segments each in the left and right lateral lobes) and two spleen segments were collected for evaluation of α-Gal A activity. The results are shown in Figures 13A through 13F.

[0264] Circulating α-Gal A protein levels and plasma α-Gal A activity were generally detectable by day 7, with protein levels and activity peaking between days 7 and 21, without a clear dose response. Animals administered the variant #4 expression construct without immunosuppression generally had lower α-Gal A protein levels and activity than animals administered the variant #4 expression construct with immunosuppression. This lack of a high dose response and elimination of α-Gal A activity and protein levels is consistent with the emergence of an immune response to human α-Gal A (the human protein administered to the animals), as confirmed by the presence of anti-human α-Gal A antibodies. Despite reduced levels of human α-Gal A, some animals maintained high levels of human α-Gal A (activity and protein). One high-dose animal (6.0E+13 IS) measured a level of 193 nmol / hr / mL on day 56, whereas levels in vehicle-treated animals were undetectable (<10 nmol / hr / mL). The transient nature of this response in some animals was likely related to an expected immune response to the human α-Gal A enzyme (a human protein administered to the animals).

[0265] Additionally, samples were evaluated for vector shedding analysis by qPCR methods in NHP studies. Low levels of hGLA vector were measured in the saliva, urine, and feces of some Variant #4-treated animals by day 4 (urine) or day 14 (saliva, feces). At day 60, hGLA vector levels were undetectable in these biofluids.

[0266] Example 6 hGLA and corresponding mRNA levels in NHP liver Western blot analysis of hGLA and corresponding mRNA levels in NHP liver samples from individual animals was performed 60 days after treatment with the variant #4 construct or formulation buffer at doses of 6.0E+12vg / kg, 1.0E+13vg / kg, 3.0E+13vg / kg, 6.0E+13vg / kg, and 6.0E+13vg / kg without immunosuppressants. As shown in Figure 14, hGLA protein levels increased with construct dose, and protein levels correlated with mRNA levels in most samples.

[0267] Example 7 Evaluation of the safety, tolerability, and pharmacodynamics of the variant #21 expression construct in humans Studies will be conducted to assess the safety and tolerability of the variant #21 expression construct in humans. Additionally, the pharmacodynamics of α-Gal A and the presence of its substrate in plasma, urine, and tissues will be measured over time. The effects of the variant #21 expression construct on ERT, renal function, immune responses, and viral vector DNA clearance in response to ERT administration in subjects will also be assessed over time.

[0268] Overall, the variant #21 and variant #4 expression constructs were well tolerated in a mouse model of Fabry disease (GLAKO), wild-type (C56BL / 6) mice, and cynomolgus monkey NHPs. In GLAKO mice, there were no adverse findings associated with a single IV administration of the variant #4 expression construct up to 5.0E+13 vg / kg, the highest dose level tested. In C57BL / 6 mice, preliminary analysis indicated that the variant #21 expression construct was well tolerated up to 1.5E+14 vg / kg, the highest dose tested. In NHPs, findings associated with the variant #21 expression construct were limited to animals that did not receive immunosuppressive treatment (6.0E+13 vg / kg). These findings consisted of an increase in lymphoid cell types in lymphoid tissues and spleens, potentially consistent with an immune response associated with hGLA and / or rAAV2 / 6 administration. In these studies, the no observed adverse effect level (NOAEL) was 6.0E+13 vg / kg, the highest dose level tested, with or without an immunosuppressive regimen.

[0269] This study uses a recombinant (e.g., rAAV2 / 6) vector construct encoding a cDNA for human α-Gal A. The vector construct encodes a liver-specific promoter, and rAAV2 / 6 exhibits liver tropism, offering the potential for long-term, stable hepatic production of α-Gal A in Fabry disease subjects after a single administration. Various AAV serotypes, including AAV2, 5, 6, and 8, can be used. The rAAV2 / 6 serotype was selected for use in this and the previous examples based on previous NHP data showing that AAV2 / 6 was primarily liver-tropic and had a similar biodistribution to AAV2 / 8, and that AAV2 / 6 and AAV2 / 8 vectors achieved similar levels of circulating FIX transgene expression. Preliminary clinical safety data were collected from 13 subjects who received the investigational product in three research trials, suggesting that infusions using this AAV2 / 6 serotype were well tolerated (data not shown).

[0270] Studies in a mouse model of Fabry disease administered intravenously with rAAV2 / 6 encoding hGLA cDNA demonstrate therapeutic levels of α-Gal A (>300-fold higher than wild-type). A single treatment with the expression vector minimizes the occurrence of infusion-related reactions. Therapeutic production of α-Gal A in humans may allow for the reduction and, in some cases, elimination of the Fabry disease substrates Gb3 and lyso-Gb3. Constant production of the enzyme, rather than the peaks and troughs seen with ERT, may also reduce the risk of antibody development to the enzyme. The variant #21 expression construct was designed to provide stable, long-term production of α-Gal A at therapeutic levels in subjects with Fabry disease. Constant production of α-Gal A in humans may also allow for the reduction and elimination of the Fabry disease substrates Gb3 and lyso-Gb3.

[0271] Test evaluation Assessments may include incidents of treatment-emergent adverse events (TEAEs), routine hematology, chemistry, and liver function, vital signs, ECG and ECHO, serial alpha-fetoprotein (AFP) tests, and MRI (or equivalent imaging) of the liver to monitor for the formation of any liver masses. Additionally, changes from baseline can be assessed at specific time points over one year, including: plasma α-Gal A activity; plasma Gb3 levels; plasma Lyso-Gb3 levels; frequency of FABRAZYME® (or equivalent ERT) infusions; estimated glomerular filtration rate (eGFR) calculated by blood creatinine levels; left ventricular volume, urinary total protein, and albumin / creatinine ratio measured by cardiac magnetic resonance imaging (MRI); α-Gal A and Gb3 levels measured in tissue; tissue and urine creatinine levels. substrate levels measured by rAAV2 / 6; biomarkers of renal function in urine; neuropathic pain assessed by the Brief Pain Questionnaire (BPI), frequency of analgesic use; gastrointestinal (GI) symptoms assessed by the GI Symptom Rating Scale; Mainz Severity Score Index (MSSI); quality of life (QOL) patient-reported outcomes assessed by the SF-36 questionnaire; immune responses to rAAV2 / 6 and α-GalA; and rAAV vector clearance, which can be measured by the levels of vector genome in blood, plasma, saliva, urine, stool, and semen.

[0272] Subject inclusion and exclusion criteria Study subjects may include male subjects with classic Fabry disease aged 18 years or older. Male subjects with classic Fabry disease must be recruited to ensure that measurement of enzyme levels produced by the cDNA transgene is not interfered with by any residual enzyme levels.

[0273] More specifically, subject inclusion criteria may include the following: (1) subjects with a documented diagnosis of classic Fabry disease, as defined by <5% α-Gal A activity in either plasma or leukocytes and one or more of the following symptomatic features of classic Fabry disease: i) cornea verticillata, ii) acrotactile dysmetria, iii) anhidrosis, iv) angiokeratoma (if clustered periumbilical angiokeratoma is documented, this symptom alone is sufficient as this is a characteristic sign of classic Fabry disease); (2) subjects on ERT (14-day [± 1 day] regimen); or subjects on ERT with Gal A activity >5%; or ERT-naive; or similar to ERT-naive, not having received ERT treatment in the past 6 months prior to consent; (3) for subjects on ERT, ERT must be administered at a stable dose (defined as not missing ≥4 doses of ERT in the 6 months prior to consent) and schedule (14 days ± 1 day for at least 3 months prior to enrollment); (4) subjects with a mutation indicative of classic Fabry disease (i.e., listed in a database such as www.dbfgp.org); (5) subjects with trough α-Gal A activity below the lower limit of the normal range of the assay; (6) male subjects approximately 18 years of age or older; (7) sexually mature subjects must have AAV-negative semen samples from the time of expression construct administration and after application of study treatment, and agree to use condoms and abstain from sperm donation for at least 90 days after application of study treatment; and (8) the subject's signed written informed consent.

[0274] For subjects without documented diagnostic α-Gal A activity levels, a blood sample should be drawn to measure α-Gal A activity levels (in plasma and / or leukocytes). For such subjects on ERT, this blood draw should be taken at least 13 days after the last ERT infusion (trough). If the subject's α-Gal A activity level is >5% and the subject is on ERT, this level of enzyme activity may be due to residual α-Gal A activity from the last ERT infusion. In this case, a diagnosis of classic Fabry disease can be supported if the following three criteria are met:

[0275] Two or more of the following documented features of classic Fabry disease: cornea verticillata, acrotactile dysesthesias, anhidrosis, and angiokeratoma. If clustered periumbilical angiokeratoma is documented, this symptom alone is sufficient because it is a characteristic sign of classic Fabry disease.

[0276] b. Mutations indicative of classic Fabry (i.e., listed in databases such as www.dbfgp.org).

[0277] c. Trough α-Gal A activity below the lower limit of the normal range of the assay.

[0278] Fabry disease gene sequencing may be performed at screening to confirm that the subject has a mutation in the GLA gene. Assays may be performed on blood or saliva samples. If available, gene sequencing results obtained prior to testing may be used.

[0279] Testing for HIV, HAV, HBV, HCV, and TB may be performed at the time of screening. Subjects with a diagnosis of HIV or evidence of active HAV, HBV, HCV, or TB infection may not be eligible to participate in this study.

[0280] To assess a subject's pre-existing immune response to AAV6, the level of neutralizing antibodies to AAV6 can be measured at the time of screening. Subjects with elevated pre-existing neutralizing antibodies to AAV6 may not be eligible to participate in this study. If dosing is not completed within 3 months of screening, the serum neutralization assay to AAV6 must be repeated.

[0281] If available, diagnostic α-Gal A activity level results in plasma or leukocytes obtained prior to the study may also be used. For subjects without a documented diagnostic α-Gal A activity level, a blood sample must be drawn to measure α-Gal A activity levels (in plasma and / or leukocytes). For such subjects on ERT, this blood draw must be taken at least 13 days after the last ERT infusion.

[0282] A chest x-ray (also known as a PA radiograph of the chest) may be obtained to assess the subject's general health and study eligibility. Unless medically indicated, a chest x-ray taken within 6 months of study enrollment may be used to determine subject eligibility. A physical examination must be performed on each subject, which must include, at a minimum, the following: general appearance, head, eyes, ears, nose, and pharynx (HEENT); and cardiovascular, dermatological, respiratory, GI, musculoskeletal, and neurological systems.

[0283] Subject exclusion criteria may include subjects who: (1) are known to be unresponsive to ERT in the judgment of the site investigator and medical monitor (e.g., no documented decline in substrate levels during ERT); (2) are currently being treated with migalastat (Galafold™) or have received previous treatment within 3 months of informed consent; (3) have an overt neutralizing antibody response to AAV (e.g., AAV6); (4) have an intercurrent illness that, in the judgment of the site investigator or medical monitor, is expected to impair safety or efficacy evaluations during the study observation period; (5) have an eGFR of ≤60 ml / min / 1.73 m2; (6) have a New York Heart (7) Active infection with hepatitis A virus (HAV), hepatitis B virus (HBV), hepatitis C virus (HCV) (HCV DNA negative), or human immunodeficiency virus (HIV) or active tuberculosis (TB) as determined by quantitative polymerase chain reaction (qPCR); (8) History of liver disease, e.g., secondary fatty liver, nonalcoholic steatohepatitis (NASH), cirrhosis, cholangitis, or biliary tract disease, excluding Gilbert syndrome; or abnormal circulating AFP; (9) For subjects receiving ERT, a new or continuing hypersensitivity reaction to ERT treatment as evidenced by a significant infusion reaction to ERT within 6 months prior to consent, as determined by the site investigator and medical monitor; (10); markers of liver inflammation or overt or subclinical causes of liver dysfunction as confirmed by one or more of the following: (i) albumin ≤ 3.5 g / dL; (ii) total bilirubin > upper limit of normal (ULN) and direct bilirubin ≥ 0.5 mg / dL; (iii) alkaline phosphatase (ALP) > 2.0 x ULN; (iv) > 1.(11) current use of, or history of use within the past 6 months of, systemic (IV or oral) immunomodulators or steroids (topical treatments are permitted, e.g., asthma or eczema) (occasional use of systemic steroids may be permitted after consultation with the medical monitor); (12) contraindication to the use of corticosteroids for immunosuppression; (13) history of malignancy, excluding non-melanoma skin cancer; (14) history of alcohol or substance abuse; (15) participation in a previous investigational interventional drug or medical device trial (excluding implantable loop recorders, such as in the RaILRoAD trial) within the past 3 months prior to consent; (16) prior treatment with a gene therapy product; (17) known hypersensitivity to any component of the ST-920 formulation; (18) any other reason that, in the judgment of the site investigator or medical monitor, would disqualify the subject from participating in the study.

[0284] Concomitant medications All medications except potentially hepatotoxic drugs are permitted. Hepatotoxic drugs such as diclofenac, amiodarone, chlorpromazine, fluconazole, isoniazid, rifampin, valproic acid, and high-dose acetaminophen (4–8 gm / day), as well as hepatotoxic herbal supplements such as senecio / ugly pea, tea bush, chaparral, Jinbuhuan, and ephedra (traditional Chinese herbal medicines), should not be taken during the study. For subjects receiving ERT, ERT must be administered at a stable dose (defined as not missing 4 or more doses of ERT in the past 6 months prior to consent) and at a stable dosing schedule (14 days ± 1 day, for at least 3 months prior to enrollment). Subjects must continue to receive ERT at a stable dose and schedule (14 days ± 1 day) throughout the study, unless discontinued.

[0285] Dose cohort The starting dose will be 5.0E+12 vg / kg, and any dose escalation to the next dose level will be based on a review of data from previous cohorts and / or other clinical trials using in vivo rAAV2 / 6-based therapy, as well as the recommendation of a Safety Review Committee (SMC), which may include external subject matter experts, study medical monitors, and site investigators as needed. As used herein, SMC members possess appropriate medical and scientific expertise and provide safety oversight for the study. Furthermore, depending on the observed enzyme activity levels and safety profile of the administered subjects, the SMC may recommend a dose escalation to an intermediate dose level of 3.0E+13 vg / kg, a three-fold increase from the dose in Cohort 2, instead of the five-fold increase to the 5.0E+13 vg / kg dose in Cohort 3. A dose of approximately 1.0E+14 vg / kg may also be considered. The three dose cohorts are shown in Table 4. [Table 4]

[0286] Subjects aged 18 years or older who meet all inclusion / exclusion criteria will be enrolled. At least two subjects will be assigned to each of three dose cohorts, with the possibility of expansion of each cohort to an additional four adult subjects for a total of 18 subjects after SMC review. The expression vector can be administered by intravenous infusion. Due to staggered treatment within each cohort, each subsequent subject will not be infused until at least approximately two weeks after the previous subject has been dosed. Dose escalation to the next dose level will not occur until at least approximately four weeks after the last subject in the preceding cohort has been dosed, and after the SMC has reviewed the safety data from the entire previous cohort.

[0287] Subjects receiving ERT prior to study enrollment must continue to receive ERT throughout the study and remain on their current dose and dosing regimen (14 days ± 1 day) according to standard of care unless ERT is discontinued. Baseline enzyme and substrate level testing for subjects on ERT will be arranged to allow for two separate morning samples to be collected at trough, defined as 14 days (+ / - 1 day) after the previous ERT infusion. Additional time points will be taken during the screening period, so there will be three time points to assess residual trough α-Gal A levels prior to gene therapy administration. These three samples should be collected at trough, preferably at the same time of day (e.g., in the morning), to minimize nonspecific factors potentially affecting enzyme levels.

[0288] To minimize potential immune responses against the rAAV capsid proteins, to avoid loss of transgene expression in the event of liver injury, and to protect liver function, prednisone or an equivalent corticosteroid can be administered prophylactically starting approximately 2 days before expression vector infusion and gradually tapered over a period of up to approximately 20 weeks.

[0289] The expression vector can be infused using a syringe pump or IV infusion pump (see Study Pharmacy Manual). The total volume will depend on the subject's cohort assignment and baseline body weight (kg). The expression vector can be administered at a controlled rate through an IV catheter while the subject's vital signs (temperature, heart rate, respiratory rate, and blood pressure) are monitored while the subject is in the hospital or emergency room, where they can remain for observation for at least 24 hours after completion of the expression vector infusion. Subjects can be discharged when all vital signs have stabilized and any adverse events (AEs) have resolved, or when the subject is deemed stable according to the investigator's judgment.

[0290] After infusion of the expression vector, study visits may occur at day 8; weeks 2, 4, 6, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, and 52. The study visits at weeks 28, 32, 40, 44, and 48 may be conducted remotely as these assessments do not require evaluation at a clinical site. Assessments of AEs and concomitant medications may also be conducted remotely over the telephone.

[0291] To monitor AAV-related immunogenicity, liver tests (AST, ALT, GGT, total and direct bilirubin, ALP, LDH, albumin, and total protein levels) may be performed twice weekly for the first approximately 20 weeks after expression vector infusion while subjects are receiving prednisone or an equivalent corticosteroid, or may be performed remotely. Blood samples for liver tests may be collected 2–4 days apart, if possible, except for the first week, when they can be collected at visits 2 and 8. Thereafter, liver tests can be performed weekly (weeks 21–24) for 4 weeks after cessation of immunosuppression, and then monthly (weeks 28–52) to coincide with study visits.

[0292] If there are signs of elevated ALT despite pretreatment with prednisone or an equivalent corticosteroid, the dose of prednisone or an equivalent corticosteroid should be continued (prednisone 1 mg / kg [maximum 60 mg] or equivalent; oral or intravenous and / or individualized increases) and liver enzymes should be assessed twice weekly until normalization occurs, after which liver enzymes may be evaluated according to the subsequent protocol.

[0293] For the first two subjects in each cohort, treatment will be staggered so that each subsequent subject will not be infused until the preceding subject has been observed for at least approximately two weeks. Dose escalation to the next dose level cannot occur until at least four weeks after the two subjects in the preceding cohort have been dosed, and after the SMC has reviewed the safety data from the two subjects in the previous cohort.

[0294] Dosing and dose escalation may be discontinued if any of the stopping rules are met.

[0295] Expression vector treatment can also eliminate the need for ERT by providing long-term, liver-specific expression of α-Gal A in Fabry disease subjects using an rAAV vector encoding a cDNA for human α-Gal A. Subjects discontinuing ERT will be closely monitored for any adverse events, vital signs, any changes in safety laboratory assessments, and α-Gal A and substrate levels compared to baseline. To allow sufficient time for transduction of target liver cells, ERT discontinuation should be considered after a 4-week period. Subjects discontinuing ERT will be closely monitored for any clinical symptoms, including fatigue and neuropathic pain, any adverse events, vital signs, any changes in safety laboratory assessments, including liver function tests, and α-Gal A and substrate (Gb3 and Lyso-Gb3) levels compared to baseline. ERT discontinuation may be made at the site investigator's discretion after consultation with the sponsor and should be considered for subjects who consent and meet the following criteria: (1) More than 4 weeks have passed since administration of ST-920. (2) Medically stable and able to tolerate temporary discontinuation of ERT at the discretion of the site investigator. (3) consent to increased safety surveillance and additional laboratory testing until the ERT discontinuation follow-up visit; (4) No need to restart ERT after the ERT discontinuation follow-up visit, except that ERT may be restarted at any time based on clinical circumstances or at the discretion of the site investigator.

[0296] ERT discontinuation may be attempted after a previous failure, at least 12 weeks after the previous attempt, if the subject consents, or at the discretion of the site investigator after consultation with the sponsor.

[0297] The duration of study participation will be a maximum of 76 weeks for each subject, divided into a maximum of 8 weeks for screening, a maximum of 12 weeks for baseline, and a 52-week follow-up period after dosing. 9-12 month accruals are planned. Subjects will be invited to participate in a separate long-term follow-up study for up to 4 years.

[0298] If any of the following criteria are met, study enrollment should be interrupted and an SMC may be convened to make recommendations regarding appropriate steps: (1) any one Grade 3 or higher adverse event with at least a reasonable possibility of a causal relationship to the expression vector product; (2) a serious adverse event (SAE) with at least a reasonable possibility of a causal relationship to the expression vector product; (3) death of a human subject; or (4) development of a malignant tumor.

[0299] Treatment-emergent AEs can be summarized overall and by dose cohort. For each subject, the highest reported severity of each AE can be used for summaries by severity grade. In addition, all SAEs and AEs related to study treatment can be summarized. For other safety assessments, data can be summarized for each time point. Changes from baseline can be calculated for continuous parameters and summarized by time point. Change tables for selected parameters can also be generated.

[0300] Plasma α-Gal A activity should be measured to assess whether α-Gal A is being produced and whether it is active. Measurements of α-Gal A levels may be performed on plasma, serum, whole blood, dried blood spots, white blood cells, or other blood components. Samples for subjects on ERT should be obtained at trough, defined as 14 days (±1 day) after the previous ERT dose. Additional samples may be obtained throughout the study to further understand the enzyme's pharmacokinetics and ensure that samples obtained before ERT are at trough.

[0301] Gb3 is a glycosphingolipid that accumulates in blood vessels, tissues, and organs in Fabry disease due to a deficiency of α-Gal A. Gb3 levels in plasma, urine, and other tissues may be measured throughout the study to assess the impact of treatment administration and α-Gal A levels. Samples for subjects on ERT should be obtained at trough, defined as 14 days (± 1 day) after the previous ERT dose.

[0302] Lyso-Gb3 is the soluble form of the substrate Gb3. Lyso-Gb3 levels in plasma, urine, and other tissues may be measured throughout the study to assess the impact of treatment administration and α-Gal A levels. Samples for subjects on ERT should be obtained at trough, defined as 14 days (± 1 day) after the previous ERT dose.

[0303] Actual values ​​and changes from baseline for α-Gal A, Gb3, and lyso-Gb3 levels at each sample collection time point can be summarized using descriptive statistics and plotted over time by dose cohort. For subjects discontinuing ERT, changes in frequency and dose of ERT infusions before and after ERT discontinuation can be assessed and summarized using total annual dose and number of infusions. Duration of ERT discontinuation can also be analyzed. AAV clearance, as measured by vector genomes in various samples (plasma, saliva, urine, stool, and semen), can be plotted over time by dose cohort.

[0304] As shown in Figure 1A, the rAAV vector contains a variant #21 hGLA expression cassette (3321 bp) containing liver-specific regulatory elements that drive expression of the hGLA transgene. The hGLA transgene is under the control of the enhancer and hepatic control region of the human apolipoprotein E (ApoE) gene and the human alpha-1-antitrypsin (hAAT) promoter. The ApoE enhancer and hAAT promoter are specific to the intended target tissue, the liver, and are highly active in the liver, but are inactive in non-liver cells and tissue types, thereby preventing hGLA expression and activity in non-target tissues. The engineered chimeric intron (HBB-IghGLA transgene) contains a codon-optimized hGLA alpha-Gal A enzyme.

[0305] Variant #21 contains a mutated form of the woodchuck hepatitis virus (WHV) posttranscriptional regulatory element (WPREmut6). WPREmut6 is a 592-bp DNA sequence containing the promoter region of the WHV X protein and the start codon of the X protein open reading frame, followed by a truncated form of the X protein itself with a point mutation in the putative promoter region to prevent X protein expression (mut6). The polyA sequence is a derivative of the bovine growth hormone polyadenylation signal. Addition of the WPREmut6 element resulted in increased α-Gal A protein production. Indeed, greater efficacy was observed with the variant #21 expression construct compared to the variant #4 expression construct (which lacked the WPREmut6 element).

[0306] The variant #21 expression construct is formulated at approximately 1.0E+13 vg / mL in phosphate buffered saline (PBS) containing CaCl, MgCl, NaCl, sucrose, and Kolliphor (poloxamer) P188, and can be filled into vials in volumes such as 2 mL, 5 mL, or 10 mL and stored at ≦−65° C. The vials have aluminum seals with flip tops.

[0307] The expression construct rAAV vector may be packaged with the capsid serotype AAV2 / 6 using the Sf9 insect cell / recombinant baculovirus (Sf9 / rBV) expression system. Alternatively, the expression construct rAAV vector may be packaged with the capsid serotype AAV2 / 6 using a mammalian expression system, such as HEK293.

[0308] Studies in a mouse model of Fabry disease, wild-type mice, and cynomolgus NHPs demonstrate the feasibility of safe production of long-lasting, potentially effective levels of α-Gal A following treatment with the variant #21 expression vector.

[0309] No adverse effects were observed at dose levels up to 1.5E+14 vg / kg in mice and 6.0E+13 vg / kg in NHPs, the highest dose levels given, respectively. Therefore, the clinical starting dose of 5.0E+12 vg / kg is supported by a 30-fold safe dose multiple in mice and a 12-fold safe dose multiple in NHPs.

[0310] Moderate levels of α-Gal A are expected in human subjects at a dose of 5.0E+12 vg / kg, based on the significant pharmacodynamic response observed in Fabry mice given 2.0E+12 vg / kg.

[0311] All patents, patent applications, and publications mentioned herein are incorporated by reference in their entirety.

[0312] Although the disclosure has been given in some detail by way of illustration and example for clarity of understanding, it will be apparent to those skilled in the art that various changes and modifications can be made without departing from the spirit or scope of the disclosure. Accordingly, the foregoing description and examples should not be construed as limiting. In one embodiment, for example, the following items are provided: (Item 1) A method for expressing at least one alpha-galactosidase A (alpha-Gal A) protein in a cell, the method comprising administering to the cell an expression construct comprising a mutated WPRE sequence, optionally a mut6 mutated WPRE sequence, and a GLA transgene encoding at least one alpha-Gal A protein, such that the alpha-Gal A protein is expressed in the cell. (Item 2) 2. The method of claim 1, wherein the expression construct comprises a wild-type GLA sequence or a codon-optimized GLA sequence. (Item 3) 3. The method of claim 1, wherein the expression construct further comprises one or more of an enhancer, a promoter, an intron, a sequence encoding a signal peptide, and / or a polyadenylation signal, and wherein the mutant WPRE sequence, optionally the mut6 mutant WPRE sequence, and the GLA transgene encoding at least one α-Gal A protein are located between the signal peptide and the sequence encoding the polyadenylation signal. (Item 4) 4. The method of claim 3, wherein the expression construct comprises the sequence of SEQ ID NO: 9. (Item 5) 5. The method of any one of items 1 to 4, wherein the cells are in a subject with Fabry disease. (Item 6) 6. The method of any one of items 1 to 5, wherein the cells are in a male subject. (Item 7) 7. The method of any one of items 1 to 6, wherein the expression construct is administered in a pharmaceutically acceptable carrier. (Item 8) 8. The method of claim 7, wherein the pharmaceutically acceptable carrier comprises phosphate buffered saline containing CaCl, MgCl, NaCl, sucrose, and Kolliphor (poloxamer) P188. (Item 9) 9. The method of any one of items 1 to 8, wherein the expression construct sequence comprises a sequence shown in Table 1, and the expression construct is delivered to the cell by an AAV viral vector. (Item 10) 10. The method of item 9, wherein the AAV viral vector serotype is AAV2 / 6. (Item 11) 11. The method of any one of items 5 to 10, wherein the expression construct is administered to the subject at a dose of between about 5.0E+12 and 1.0E+14 vector genomes per kilogram (vg / kg). (Item 12) 12. The method according to any one of items 5 to 11, wherein the expression construct is administered to the liver of the subject. (Item 13) 13. The method according to any one of items 5 to 12, wherein the expression vector is administered to the subject by intravenous infusion. (Item 14) 14. The method according to any one of items 5 to 13, wherein the expression construct is administered to the subject in only one dose. (Item 15) 15. The method according to any one of items 5 to 14, wherein the subject is administered an immunosuppressant before and / or during administration of the expression construct. (Item 16) 16. The method of claim 15, wherein the immunosuppressant comprises prednisone. (Item 17) 17. The method of any one of items 1 to 16, wherein expression of the at least one alpha-galactosidase A (α-Gal A) protein is maintained for at least 3 months, at least 9 months, or at least 12 months. (Item 18) 18. The method of any one of items 5 to 17, wherein the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in the subject by at least about 2- to about 9-fold compared to an untreated subject. (Item 19) 19. The method of any one of items 5 to 18, wherein the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in the subject by at least about 80%. (Item 20) 20. The method of any one of items 5 to 19, wherein the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in one or more of the subject's plasma, liver, heart, kidney, or spleen. (Item 21) 21. The method of any one of items 5 to 20, wherein the expression construct produced in a HEK293 cell line results in a GLA level in the subject that is about 21-fold higher compared to the GLA level in a subject administered the expression construct produced in an Sf9 cell line. (Item 22) 22. The method of any one of paragraphs 5 to 21, wherein the α-Gal A protein activity in the subject is between about 100-fold and 1,500-fold higher than physiologically normal / wild type. (Item 23) 23. The method of any one of items 5 to 22, wherein the α-Gal A protein expressed from the transgene is active in the kidney, liver, and heart of the subject. (Item 24) 24. The method according to any one of items 1 to 23, wherein the GLA transgene is maintained extrachromosomally and is not integrated into the genome of the cell. (Item 25) 24. The method of any one of items 1 to 23, further comprising administering one or more nucleases that cleave the albumin gene in liver cells of the subject such that the transgene is integrated into and expressed from the endogenous albumin gene. (Item 26) A genetically modified cell containing an exogenous GLA transgene, produced by the method according to any one of items 1 to 4. (Item 27) 27. The genetically modified cell of item 26, wherein the cell is a stem or progenitor cell. (Item 28) 28. The genetically modified cell of item 27, wherein the cell is a liver or muscle cell. (Item 29) 29. The genetically modified cell according to any one of items 26 to 28, wherein the GLA transgene is maintained extrachromosomally and is not integrated into the genome of the cell. (Item 30) 29. The genetically modified cell according to any one of items 26 to 28, wherein the GLA transgene is integrated into the genome of the cell. (Item 31) A method for preventing, inhibiting, or treating Fabry disease or one or more symptoms associated with Fabry disease, comprising administering to a subject in need thereof an expression construct, the expression construct comprising a mutated WPRE sequence, optionally a mut6 mutated WPRE sequence, and a GLA transgene encoding at least one α-Gal A protein. (Item 32) 32. The method of claim 31, wherein the symptoms include one or more of above-normal Gb3 levels, above-normal lyso-Gb3 levels, renal disease, cardiac disease, acrotactile dysesthesias, angiokeratoma, gastrointestinal pain, corneal and lens opacities, or cerebrovascular disease. (Item 33) 33. The method of claim 31 or 32, wherein the subject is male and the subject has less than about 5% α-Gal A enzyme activity. (Item 34) 32. The method of claim 31, wherein the expression construct comprises a wild-type GLA sequence or a codon-optimized GLA sequence. (Item 35) 35. The method of claim 31, 33, or 34, wherein the expression construct further comprises one or more of an enhancer, a promoter, an intron, a sequence encoding a signal peptide, and / or a polyadenylation signal, and the mutant WPRE sequence, optionally the mut6 mutant WPRE sequence, and the GLA transgene encoding at least one α-Gal A protein are located between the signal peptide and the sequence encoding the polyadenylation signal. (Item 36) 32. The method of claim 31, wherein the expression construct is administered in a pharmaceutically acceptable carrier. (Item 37) 37. The method of claim 36, wherein the pharmaceutically acceptable carrier comprises phosphate buffered saline containing CaCl, MgCl, NaCl, sucrose, and Kolliphor (poloxamer) P188. (Item 38) 32. The method of claim 31, wherein the expression construct sequence comprises a sequence shown in Table 1, and the expression construct is delivered to the subject's cells by an AAV viral vector. (Item 39) 39. The method of item 38, wherein the AAV viral vector serotype is AAV2 / 6. (Item 40) 40. The method of any one of items 31 to 39, wherein the expression construct is administered to the subject at a dose of between about 5.0E+12 and 1.0E+14 vector genomes per kilogram (vg / kg). (Item 41) 41. The method according to any one of items 31 to 40, wherein the expression construct is administered to the liver of the subject. (Item 42) 42. The method of any one of items 31 to 41, wherein the expression vector is administered to the subject by intravenous infusion. (Item 43) 43. The method of any one of items 31 to 42, wherein the expression construct is administered to the subject in a single dose. (Item 44) 44. The method according to any one of items 31 to 43, wherein the subject is administered an immunosuppressant before and / or during administration of the expression construct. (Item 45) 45. The method of claim 44, wherein the immunosuppressant comprises prednisone. (Item 46) 46. ​​The method of any one of items 31 to 45, wherein expression of the at least one alpha-galactosidase A (α-Gal A) protein is maintained for at least 3 months, at least 9 months, or at least 12 months. (Item 47) 47. The method of any one of items 31 to 46, wherein the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in the subject by at least about 3- to about 9-fold compared to an untreated subject. (Item 48) 47. The method of any one of items 31 to 46, wherein the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in the subject by at least about 80%. (Item 49) 49. The method of any one of items 31 to 48, wherein the α-Gal A protein expressed from the transgene reduces the amount of glycosphingolipids in one or more of the subject's plasma, liver, heart, kidney, or spleen. (Item 50) 50. The method of any one of items 31 to 49, wherein the expression construct is produced in a HEK293 cell line, and the GLA level in the subject is 21-fold higher compared to the GLA level in a subject administered the expression construct produced in an Sf9 cell line. (Item 51) 51. The method of any one of paragraphs 31 to 50, wherein the α-Gal A protein activity in the subject is between about 100-fold and 1,500-fold higher than physiological normal. (Item 52) 52. The method of any one of items 31 to 51, wherein the α-Gal A protein expressed from the transgene is active in the kidney, liver, and heart of the subject. (Item 53) 53. The method according to any one of items 31 to 52, wherein the GLA transgene is maintained extrachromosomally and is not integrated into the genome of the subject's cells. (Item 54) 53. The method of any one of items 31 to 52, further comprising administering one or more nucleases that cleave the albumin gene in liver cells of the subject such that the transgene is integrated into and expressed from the endogenous albumin gene. (Item 55) A composition comprising an expression construct, the expression construct comprising a mutated WPRE sequence, optionally a mut6 mutated WPRE sequence, and a GLA transgene encoding at least one α-Gal A protein for the treatment of Fabry disease. (Item 56) 56. The composition of claim 55, further comprising a pharmaceutically acceptable carrier. (Item 57) The pharmaceutically acceptable carrier may be CaCl2, MgCl2, NaCl, sucrose, and 57. The composition of item 56, comprising Kolliphor (poloxamer) P188. (Item 58) 56. The composition of claim 55, wherein the expression construct comprises a wild-type GLA sequence or a codon-optimized GLA sequence. (Item 59) 59. The composition of any one of Items 55 to 58, wherein the expression construct further comprises one or more of an enhancer, a promoter, an intron, a sequence encoding a signal peptide, and / or a polyadenylation signal, and wherein the mutant WPRE sequence, optionally the mut6 mutant WPRE sequence, and the GLA transgene encoding at least one α-Gal A protein are located between the signal peptide and the sequence encoding the polyadenylation signal. (Item 60) 60. The composition of any one of items 55 to 59, wherein the expression construct sequence comprises a sequence shown in Table 1, and the expression construct is delivered to the cell by an AAV viral vector. (Item 61) 61. The composition according to any one of items 55 to 60, wherein the AAV viral vector serotype is AAV2 / 6. (Item 62) 62. The composition of item 60 or 61, wherein the expression construct comprises between about 5.0E+12 and 1.0E+14 vector genomes per kilogram of subject (vg / kg). (Item 63) 60. The composition of claim 59, wherein the expression construct comprises the sequence of SEQ ID NO: 9. (Item 64) 1. A method for producing α-Gal A protein for the treatment of Fabry disease, comprising expressing the α-Gal A protein in an isolated cell by the method of any one of paragraphs 1 to 4, and isolating the α-Gal A protein produced by the cell. (Item 65) A delivery vector comprising a mutated WPRE sequence, optionally a mut6 WPRE sequence and a GLA transgene, for use in the method described in item 1. (Item 66) 66. The vector of item 65, wherein the delivery vector is a viral vector or a lipid nanoparticle (LNP). (Item 67) 67. The vector of claim 66, wherein the viral vector comprises AAV2 / 6, and the viral vector delivers the expression construct to at least 50%, at least 60%, at least 70%, or at least 80% of cells. (Item 68) 10. Use of the expression construct, AAV vector and / or genetically modified cell of any one of the preceding items for the treatment of Fabry disease. (Item 69) 4. The method of claim 3, wherein the enhancer comprises SEQ ID NO: 2, the promoter comprises SEQ ID NO: 3, the intron comprises SEQ ID NO: 4, the GLA transgene comprises SEQ ID NO: 5, the mutated WPRE sequence comprises SEQ ID NO: 6, and the polyadenylation signal comprises SEQ ID NO: 7. (Item 70) The enhancer comprises SEQ ID NO:2, the promoter comprises SEQ ID NO:3, the intron comprises SEQ ID NO:4, the GLA transgene comprises SEQ ID NO:5, the mutated WPRE sequence comprises SEQ ID NO:6, and the polyadenylation signal comprises SEQ ID NO:7. 60. The composition of claim 59, comprising

Claims

[Claim 1] The invention described in the specification.